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Zusammenfassung

In den folgenden zwanglos zusammengsstellten kurzen Abschnitten wird eine Reihe von praktischen Fragen behandelt. Eine allgemeine Bemerkung sei hier noch eingeflochten. Soweit fertige Geräte der Industrie greifbar sind, lohnt der Selbstbau heute in den meisten Fällen nicht mehr. Nicht erhältliche Bausteine oder Kombinationen sollten vom Physiker zwar entworfen und berechnet, dann aber von einer elektronischen Werkstatt ausgeführt werden, auf die heute nicht mehr verzichtet werden kann. Die übrigen Fälle, die vom Physiker selbst entwickelt und getestet werden müssen, sind immer noch häufig genug, so daß die wissenschaftliche Arbeit nicht durch Routinearbeit belastet werden sollte.

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Literaturverzeichnis

7.5.1 Lehrbücher und Nachschlagewerke, auf die teilweise im Text Bezung genommen wurde

  1. Amos, S. W. : Principles of transitor circuits. London : Iliffe and Sons 1959.

    Google Scholar 

  2. Archiv für Technisches Messen (ATM), München: Oldenbourg.

    Google Scholar 

  3. Atomkernenergie-Dokumentation beim Gmelin-Inst. Frankfurt a. M., (Sachregister) .

    Google Scholar 

  4. Barkhausen, H. : Lehrb. d. Elektronenröhren, Leipzig : Hirzel 1954/8.

    Google Scholar 

  5. Bigalke, A. : Meßtechnik der Elektronenstrahl-Oszillographen. Karlsruhe : Braun 1959.

    Google Scholar 

  6. Birks, J. B. : Scintillation counters. London : Pergamon Press 1953.

    Google Scholar 

  7. Blackburn, J. F. : Components handbook, MIT Band 17. New York : MacGraw-Hill 1949.

    Google Scholar 

  8. Chance, B., R. I. Hulsizer, E. F. Macnichol and F. C. Williams : Electronic time measurements, MIT Band 20. New York : MacGraw-Hill 1949.

    Google Scholar 

  9. Chance, B., V. Hughes, E. F. Macnichol, D. Sayre and F. C. Williams : Waveforms, MIT Band 19. New York: MacGraw-Hill 1949.

    Google Scholar 

  10. Curran, S. C. : Luminescence and scintillation counters. London : Butterworth 1953.

    Google Scholar 

  11. Czech, J. : Oszillographen-Meßtechnik. Berlin : Verlag f. Radio-KinoFoto-Technik 1959.

    Google Scholar 

  12. Dosse, J. : Der Transistor. München : Oldenbourg 1959.

    Google Scholar 

  13. Elmore, W. C., and M. Sands : Electronics. New York: MacGraw-Hill 1949.

    Google Scholar 

  14. Frost-Smith, E. H. : Theory and design of magnetic amplifiers. London: Chapman and Hall 1959.

    Google Scholar 

  15. FÜnfer, E., u. H. Neuert : Zählrohre und Szintillationszähler. Karlsruhe : Braun 1959.

    Google Scholar 

  16. Funktechnische Arbeitsblätter. München : Franzis 1951/1959.

    Google Scholar 

  17. Geyger, W. A. : Magnetverstärker-Schaltungen. Stuttgart : Verlag Berliner Union 1959.

    Google Scholar 

  18. Gillespie, A. B. : Signal, noise and resolution in nuclear counter amplifiers. London: Pergamon Press 1953. Dt. übersetzung 1958.

    Google Scholar 

  19. Glasoe, G. M., and J. V. Lebacqz : Pulse generators. MIT Band 5. New York : Mac Graw-Hill 1948.

    Google Scholar 

  20. Gray, J. W. : Vacuum tube amplifiers. New York: MacGraw-Hill 1948.

    Google Scholar 

  21. Harris, F. K. : Electrical measurements. New York : Wiley and Sons 1952.

    Google Scholar 

  22. Hartmann, W., U. F. Bernhard : Fotovervielfacher und ihre Anwendung in der Kernphysik. Berlin : Akad. Verlag 1957.

    Google Scholar 

  23. Henney, K. : Radio engineering handbook. New York : MacGraw-Hill 1959.

    Google Scholar 

  24. Kretzmann, R. : Handbuch der industriellen Elektronik. Berlin : Verlag für Radio-Foto-Kino-Technik 1955.

    Google Scholar 

  25. Kulp, M. : Elektronenröhren und ihre Schaltungen. Göttingen : Vandenhoek und Ruprecht 1958.

    Google Scholar 

  26. Lawson, J. L., and G. E. Uhlenbeck : Threshold signals, MIT Band 24. New York : Mac Graw-Hill 1950.

    Google Scholar 

  27. Lewis, I. A. D., and F. H. Wells : Millimicrosecond techniques. London : Pergamon Press 1954.

    Google Scholar 

  28. Mejerowitsch, L. A., u. L. G. Selitschenko : Impulstechnik. Berlin : Verlag Technik 1959.

    Google Scholar 

  29. Mende, H. G. : Leitfaden der Transistortechnik. München : Franzis 1959.

    Google Scholar 

  30. Millman, J., u. H. Taub : Pulse and digital circuits. New York : MacGraw-Hill 1956.

    Google Scholar 

  31. Moskowitz, S., and J. Racker: Pulse techniques. New York : Prentice Hall 1951.

    Google Scholar 

  32. Müller-Lübeck, K. : Der Kathodenverstärker. Berlin-Göttingen-Heidelberg : Springer 1956.

    Book  Google Scholar 

  33. Neeteson, P. A.: Elek tronenröhren in der Impul stechnik. Philips Tech. Bibl. Band IX (1958).

    Google Scholar 

  34. Neeteson, P. A.: Analysis of bis table multivib rator operation. Philips tech. Library (1956).

    Google Scholar 

  35. Peters, J. : Einschwingvorgänge, Gegenkopplung, Stabilität. BerlinGöttingen-Heidelberg : Springer 1954.

    Book  Google Scholar 

  36. Price, W. J. : Nuclear radiation detection. New York : MacGraw-Hill 1958.

    Google Scholar 

  37. Puckle, O. S. : Time bases. London : Chapman and Hall 1952.

    Google Scholar 

  38. Rossi, B., and H. Staub : Ionisation chambers and counters. New York : MacGraw-Hill 1949.

    Google Scholar 

  39. Rothe, H., u. W. Kleen : Hochvakuum-Elektronenröhren I-IV. Frankfurt a. M. : Akad. Verlag 1948/55.

    Google Scholar 

  40. Schlegel, H. R., u. A. Nowak : Impulstechnik. Hannover : Schütz 1955.

    Google Scholar 

  41. Schröder, H. : El. Nachrichtentechnik. Berlin : Verlag f. Radio-FotoKino-Technik 1959.

    Google Scholar 

  42. Seely, S. : Electron-tube circuits. New York : MacGraw-Hill 1957.

    Google Scholar 

  43. Steimel, K. : Elektronische Speisegeräte. München : Franzis 1958.

    Google Scholar 

  44. Terman, F. E. : Radio Eng. Handbook. New York : MacGraw-Hill 1950.

    Google Scholar 

  45. Valley, G. E., and H. Wallman : Vacuum tube amplifiers. MIT Band 18. New York : Mac Graw-Hill 1948.

    Google Scholar 

  46. Wilkinson, D. H. : Ionisation chambers. New York : MacGraw-Hill 1950.

    Google Scholar 

  47. Winckel, F. : Impulstechnik. Berlin- Göttingen-Heidelberg : Springer 1956.

    MATH  Google Scholar 

7.5.2 Einzelne Arbeiten

  1. Alberigi-Quaranta, A., C. Bernardini, C. Infante and I. F. Quercia : A logarithmic, constant percent error, pulse height analyzer. Nuclear Instr. 5, 120 (1959).

    Article  ADS  Google Scholar 

  2. Amram, Y., H. Guillon et B. Ollivier: Démultiplicateurs de fréquence à ligne à retard. Onde Electrique 38, 633 (1958).

    Google Scholar 

  3. Andrew, A. M.: Difference amplifier design. Wir. Eng. 32/3, 73 (1955).

    Google Scholar 

  4. Armstrong, H. L.: An amplitude comparison circuit. Rev. Sci. Instr. 24, 551 (1953).

    Article  ADS  Google Scholar 

  5. Artzt, M. : Survey of DC amplifiers. Electronics 18/8, 112 (1945).

    Google Scholar 

  6. Aström, B. : Decade pulse counter for GM tubes. Rev. Sci. Instr. 21, 323 (1950).

    Article  ADS  Google Scholar 

  7. Aström, B. : Scintillation spectrometer with constant relative channel width. Nuclear Instr. 1, 143 (1957).

    Article  Google Scholar 

  8. Baker, J. C., and G. G. Eichxoiz : Reliable scaling circuits for decade tubes. Nucleonics 12/4, 44 (1954).

    Google Scholar 

  9. Baker, W. H., M. L. Curtis, L. B. Gnagey, J. W. Heyd and J. S. Stanton : Very wide range absorption counting system. Nucleonics 13/2, 40 (1955).

    Google Scholar 

  10. Baldinger, E., and W. Franzen : Amplitude and time measurements in nuclear physics. Advances in Electronics and Electron Phys. VIII, 255 (1956).

    Article  Google Scholar 

  11. Baldinger, E., u. W. Haeberli: Impulsverstärker und ImpulsSpektrographen. Ergeb. exakt. Naturw. 27, 248 (1953).

    Article  Google Scholar 

  12. Baldinger, E., P. Santschi and P. Wehrli: Highspeed transistorized scale-of-two. Nuclear Instr. 4, 117 (1959).

    Article  ADS  Google Scholar 

  13. Banerjee, B. M., and S. Choudhury : Tolerance limit of resistors in binary scaling units. Electronic Eng. 29, 237 (1957).

    Google Scholar 

  14. Barabaschi, S., C. Cottini and E. Gatti: High sensitivity and accuracy pulse trigger circuit. Nuovo cimento 2, 1042 (1955).

    Article  Google Scholar 

  15. Barber, D. L. A.: A reversible dekatron counter. Electronic Eng. 31, 42, 172 (1959).

    Google Scholar 

  16. Barnay, K. H.: The binary quantizer. Electrical Eng. 68, 962 (1949).

    Google Scholar 

  17. Barron, J.: Design of high efficiency r. f. e. h. t. supplies. Electronic Eng. 26, 393 (1954).

    Google Scholar 

  18. Barton, J. C.: Simple core scaling circuits. Nuclear Instr. 5, 332 (1959).

    Article  ADS  Google Scholar 

  19. Basset, H. G., and L. C. Kelly : Distributed amplifiers. Proc. Inst. Elec. Engrs. (London) 101 (III), 5 (1954).

    Google Scholar 

  20. Bay, Z.: A new type of high speed coincidence circuit. Rev. Sci. Instr. 22, 397 (1951).

    Article  ADS  Google Scholar 

  21. Bay, Z. : Technique and theory of fast coincidence experiments. IRE Trans. on Nuclear Sci. NS-3, 4, 12 (1956).

    Google Scholar 

  22. Bay, Z.: Millimicrosecond coincidence circuits. Nucleonics 14/4, 56 (1956).

    Google Scholar 

  23. Beghian, L. E., G. H. R. Kegel and R. P. Scaarenberg : Fast NaJspectrometer and its application to millimicrosecond time measurement. Rev. Sci. Instr. 29, 753 (1958).

    Article  ADS  Google Scholar 

  24. Bell, P. R. : Nuclear particle detection : fast electronics. Ann. Rev. Nuclear Sci. 4, 93 (1954).

    Article  ADS  Google Scholar 

  25. Bell, H. V., and W. Alexander: An investigation into some aspects of diode quantizing circuits. Electronic Eng. 31, 594 (1959).

    Google Scholar 

  26. Bell, R. E., R. L. Graham and H. E. Petcx: Design and use of a coincidence circuit of short resolving time. Can. J. Phys. 30, 35 (1952).

    Article  ADS  Google Scholar 

  27. Benjamin, R.: Blocking oscillators. J. Inst. Elec. Engrs. (London) 93 (III A), 1159 (1946).

    Google Scholar 

  28. Bennett, R. G. T., and C. S. L. Keay: Electronic filtering circuit. Electronic Eng. 30, 99 (1958).

    Google Scholar 

  29. Benson, F. A., and M. S. Seaman : A low voltage DC stabilizer using a saturated-diode controller. Electronic Eng. 29, 121 (1957).

    Google Scholar 

  30. Bertram, S.: Degenerative positive bias multivibrator. Proc. Inst. Radio Engrs. 36, 277 (1948).

    Google Scholar 

  31. Bethke, J.: New applications for beam switching tubes. Electronics 29/4, 122 (1956).

    Google Scholar 

  32. Billington, C. : Direct coupled phase splitter. Electronic Eng. 30, 480 (1958).

    Google Scholar 

  33. Billington, C. and E. Chakanovskis : A voltage stabilizer principle. Electronic Eng. 29, 374 (1957) ; 30, 210 (1958).

    Google Scholar 

  34. Blet, G. : Quelques considérations sur les amplificateurs électroniques à coefficient d’amplification négatif élevé. J. phys. radium 19, 20 A(1958).

    Google Scholar 

  35. Booth, A. D., and J. Ringrose : Three state flipflop. Electronic Eng. 23, 133, 237 (1951).

    Google Scholar 

  36. Boucherie, A., et J. Mey : Un sélecteur d’amplitude distribué du type Rosenblum. J. phys. radium 19, 98 (1958).

    Article  Google Scholar 

  37. Bradshaw, C. G. : A 1 mc transistor decade counter. Electronic Eng. 31, 96 (1959).

    Google Scholar 

  38. Breitenberger, E.: A prescision single channel kicksorter for coincidence work. Phil. Mag. 44, 987 (1953).

    Google Scholar 

  39. Briscoe, W. L. : Electronic computer for mass identification of particles. Rev. Sci. Instr. 29, 401 (1958).

    Article  ADS  Google Scholar 

  40. Broten, N. W.: Heater voltage compensation for AC amplifiers. Proc. Inst. Radio Engrs. 40, 843 (1952).

    Google Scholar 

  41. Brown, M. : Greater gain band width in trigger circuits. Rev. Sci. Instr. 30, 169 (1959).

    Article  ADS  Google Scholar 

  42. Brown, T. II., and W. L. Stephenson : A stabilized DC power supply using transistors. Electronic Eng. 29, 425 (1957).

    Google Scholar 

  43. Brunner, J., J. Halter, O. Huber, R. Joly und D. Maeder: Untersuchung des Zerfalles von Hg195 Au195 mit Beta- Gamma-Koinzidenzen. Helv. Phys. Acta 27, 572 (1954).

    Google Scholar 

  44. Brunson, G. S. : Transistorized photomultiplier has 0.1 ,usec resolution. Nucleonics 15/7, 86 (1957).

    Google Scholar 

  45. Burrus, C. A. : Improved low repetition rate m, usec pulse generator. Rev. Sci. Instr. 30, 295 (1959).

    Article  ADS  Google Scholar 

  46. Cederbaum, I., and P. Balaban : Automatic drift compensation in DC amplifiers. Rev. Sci. Instr. 26, 745 (1955).

    Article  ADS  Google Scholar 

  47. Chagnon, P. R. : Linear gate circuit for pulse height analyzers. Rev. Sci. Instr. 24, 990 (1953).

    Article  ADS  Google Scholar 

  48. Chagnon, P., L. Zernow and L. Madansky : Mixer for a system of photomultipliers. Rev. Sci. Instr. 24, 326 (1953).

    Article  ADS  Google Scholar 

  49. Chance, B., F. C. Williams, C. C. Yang, J. Busser and J. Higgins : A quarter square multiplier using a segmented parabolic characteristic. Rev. Sci. Instr. 22, 683 (1951).

    Article  ADS  Google Scholar 

  50. Chaplin, G. B. B., and C. J. N. Candy : A transistor circuit for fast coincidence measurements. Nuclear Instr. 5, 242 (1959).

    Article  ADS  Google Scholar 

  51. Chase, R. L., W. Bernstein and A. W. Schardt : Gray wedge pulse height analysis. Rev. Sci. Instr. 24, 437 (1953) — BNL Report 263 (T-42) (1953), 237 (T-37) (1954).

    Article  ADS  Google Scholar 

  52. Chase, R. L., and W. A. Higinbotham : Flexible pulse amplifier with good overload properties. Rev. Sci. Instr. 23, 34 (1952). Nachbau: Marburger Rundber. G 2, ImpV (1956).

    Article  ADS  Google Scholar 

  53. Chase, R. L., and W. A. Higinbotham : Millimicrosecond time to pulse height converter using an r. f. vernier. Rev. Sci. Instr. 28, 448 (1957).

    Article  ADS  Google Scholar 

  54. Chenette, E. R., K. Shimada and A. Van Der Ziel: Photomultiplier tubes as standard noise sources. Rev. Sci. Instr. 28, 835 (1957).

    Article  ADS  Google Scholar 

  55. Christiansen, J. : Ein elektronisches Koinzidenzverfahren hoher Auflösung. Nuclear Instr. 5, 115 (1959).

    Article  ADS  Google Scholar 

  56. Churchill, J. L. W., and S. C. Curran : Pulse amplitude analysis. Advances in Electronics and Electron Phys. 8, 317 (1956).

    Article  Google Scholar 

  57. Clark, T. G. : An electronic transformator. Electronic Eng. 30, 545(1958).

    Google Scholar 

  58. Close, R. N., and M. T. Lebenbaum: Design of phantastron time delay circuits. Electronics 21/4, 100 (1948).

    Google Scholar 

  59. Coleman, C. F. : Gainscanned single channel kicksorter using precision cascade attenuators. Nuclear Instr. 2, 44 (1958).

    Article  Google Scholar 

  60. Collinge, B.: A transistor scaling circuit with a short resolving time. Electronic Eng. 31, 604 (1959).

    Google Scholar 

  61. Collinge, B., and G. B. Huxtable : 20 mc scaling circuit. Nuclear Instr. 3, 116 (1958).

    Article  Google Scholar 

  62. Collins, D. J., and J. E. Smith: Regulated power supplies. Electronic Eng. 31, 222 (1959).

    Google Scholar 

  63. Cooke-Yarborough, E. H. : A new pulse amplitude discriminator circuit. J. Sci. Instr. 26, 96 (1949).

    Article  ADS  Google Scholar 

  64. Cooke-Yarborough, E. H. : The counting of random pulses. J. Brit. Inst. Elec. Engrs. 11, 367 (1951).

    Google Scholar 

  65. Cooke-Yarborough, E. H., and E. W. Pulsford : A counting ratemeter of high accuracy. Proc. Inst. Elec. Engrs. (London) 98 (II), 191, 196 (1951).

    Google Scholar 

  66. Cottini, C., and E. Gatti: Millimicrosecond time analyzer. Nuovo Cimento. 4, 1550 (1956).

    Article  Google Scholar 

  67. Crouch, M. F. : Multichannel delay discriminator. Rev. Sci. Instr. 25, 924 (1954).

    Article  ADS  Google Scholar 

  68. Crowell, A. D., and P. R. Low : Improved quenching circuit for Geiger counters. Rev. Sci. Instr. 29, 245 (1958).

    Article  ADS  Google Scholar 

  69. Cubasch, F. : Die dekadische Zählröhre E 1 T usw. Elektronik 3, 79, 85 (1954) ; 4, 33, 61 (1955).

    Google Scholar 

  70. Baum, C.: A current integrator with digital output. Nuclear Instr. 5, 75 (1959).

    Article  ADS  Google Scholar 

  71. Davis, F. J., and P. W. Reinhardt : Mixing preamplifiers. Rev. Sci. Instr. 25, 1024 (1954).

    Article  ADS  Google Scholar 

  72. Debenedetti, S., u. R. W. Findley : The coincidence method. Handb. d. Phys. XLV, 222. Berlin-Göttingen-Heidelberg : Springer 1958.

    Google Scholar 

  73. Debenedetti, S., and H. J. Richings : On the resolution of short time intervals with scintillation counters. Rev. Sci. Instr. 23 37 (1952).

    Article  ADS  Google Scholar 

  74. Degallier, M. : Zero inefficiency anticoincidence circuit. Rev. Sci. Instr. 21, 1025 (1950) .

    Article  ADS  Google Scholar 

  75. Dehaan, E. F., P. Huijer and C. C. Jonker : The resolving time of the Rossi circuit. Physica 21, 565 (1955).

    Article  ADS  Google Scholar 

  76. Dewaard, H. : Stabilizing scintillation spectrometers with counting rate difference feedback. Nucleonics 13/7, 36 (1955).

    Google Scholar 

  77. Dewaard, H.: Some limitations and principles of nanosecond time measurement in nuclear physics. Nuclear Instr. 2, 73 (1958).

    Article  ADS  Google Scholar 

  78. Dicke, R. H. : Highspeed coincidence circuit. Rev. Sci. Instr. 18, 907 (1947).

    Article  ADS  Google Scholar 

  79. Donaldson, P. E. K. : Multiple channel oscilloscope for electrophysiology. Electronic Eng. 29, 78 (1957).

    Google Scholar 

  80. Dorn, C. G.: Fast rise pulse generator with high pulse repetition frequency. Rev. Sci. Instr. 27, 283 (1956).

    Article  ADS  Google Scholar 

  81. Earnshaw, J. B. : A square wave converter with feedback control of mark to space ratio. Electronic Eng. 29, 170 (1957).

    Google Scholar 

  82. Edwards, C.: Influence of the output time constant of a cathode follower. Electronic Eng. 30, 712 (1958).

    Google Scholar 

  83. Ehmert, A.: Über gegengekoppelte Gleichstromverstärker. Z. angew. Phys. 5, 24 (1953).

    Google Scholar 

  84. Eichholz, J. J., C. F. Nelson and G. T. Weiss : Extended range distributed amplifier design. Rev. Sci. Instr. 30, 1 (1959).

    Article  ADS  Google Scholar 

  85. Eklund, K.: Use of operational amplifiers in precision current regulators. Rev. Sci. Instr. 30, 328 (1959).

    Article  ADS  Google Scholar 

  86. Elmore, W. C. : Electronics for the nuclear physicist. Nucleonics 2/2, 4; 2/3, 16; 2/4, 43; 2/5, 50 (1948).

    Google Scholar 

  87. Elmore, W. C.: Fast pulse amplifiers for nuclear research. Nucleonics 5/9, 48 (1949).

    Google Scholar 

  88. Elmore, W. C.: Decade scaling circuits. Rev. Sci. Instr. 22, 835 (1951).

    Article  ADS  Google Scholar 

  89. Elmore, W. C.: Attenuation and pulse shaping in pulse amplifiers. Rev. Sci. Instr. 26, 787 (1955).

    Article  ADS  Google Scholar 

  90. Enslein, K. : Distributed amplifier for nuclear research. Electronics 27/7, 138 (1954).

    Google Scholar 

  91. Enslein, K.: 6218 beam deflection tube as a complex pulse generator. Rev. Sci. Instr. 25, 355 (1954).

    Article  ADS  Google Scholar 

  92. Fairstein, E. : Improving linearity of pulse amplifiers. Rev. Sci. Instr. 25, 1134 (1954).

    Article  ADS  Google Scholar 

  93. Fairstein, E.: Nonblocking double line linear pulse amplifier. Rev. Sci. Instr. 27, 475 (1956).

    Article  ADS  Google Scholar 

  94. Fairstein, E.: Effect of driving pulse shape on a Schmitt trigger circuit. Rev. Sci. Instr. 27, 483 (1956).

    Article  ADS  Google Scholar 

  95. Fairstein, E.: Grid current in electron tubes. Rev. Sci. Instr. 29, 524 (1958).

    Article  ADS  Google Scholar 

  96. Fairstein, E., and F. M. Porter: Fast differential pulse height selector/improved circuit. Rev. Sci. Instr. 23, 650 (1952)7;

    Article  ADS  Google Scholar 

  97. Fairstein, E., and F. M. Porter: Fast differential pulse height selector/improved circuit. Rev. Sci. Instr. 27, 549 (1956).

    Article  ADS  Google Scholar 

  98. Farinelli, U., and R. Malvano : Pulsing of photomultiplier tubes. Rev. Sci. Instr. 29, 699 (1958).

    Article  ADS  Google Scholar 

  99. Farley, F. J. M. : A flexible pulse amplitude analyzer. J. Sci. Instr. 31, 241 (1954).

    Article  ADS  Google Scholar 

  100. Farley, F. J. M. : Highspeed pulse amplitude discriminator. Rev. Sci. Instr. 29, 595 (1958).

    Article  ADS  Google Scholar 

  101. Favre, R. : Dispositif de réduction de temps de résolution des démultiplicateurs électroniques d’impulsions. Helv. Phys. Acta 27, 683 (1954).

    Google Scholar 

  102. Favre, R.: La tube à émission secondaire générateur d’impulsions cathodiques. Helv. Phys. Acta 28, 167 (1955).

    Google Scholar 

  103. Favre, R. : Démultiplicateurs électroniques d’impulsions. Nuclear Instr. 1, 113, 201 (1957).

    Article  Google Scholar 

  104. Fergusson, G. J., and G. H. Fraser : The design of four tube decade scales. Rev. Sci. Instr. 22, 937 (1951).

    Article  ADS  Google Scholar 

  105. Fidecaro, G., and A. M. Wetherell : Notes on the design of distributed amplifiers. Nuovo Cimento 3, 359 (1956).

    Article  Google Scholar 

  106. Finch, G. I. : Pulse generator. Proc. Inst. Radio Engrs. 38, 657 (1950).

    Google Scholar 

  107. Fischmann, A. F. : Difference counters. Electronic Eng. 29, 546 (1957).

    Google Scholar 

  108. Fischmann-Arbel, A.: Precision Schmitt trigger. Nuclear Instr. 5, 56 (1959).

    Article  ADS  Google Scholar 

  109. Fisher, J., and J. Marshall: 6 BN 6 gated beam tube as a fast coincidence circuit. Rev. Sci. Instr. 23, 417 (1952).

    Article  ADS  Google Scholar 

  110. Florida, C. D., and R. Williamson: A cold cathode scaling unit. Electronic Eng. 26, 111 (1954).

    Google Scholar 

  111. Flynn, J. T., and F. A. Johnson : Fast gray wedge analyzer for high input rates. Rev. Sci. Instr. 28, 867 (1957).

    Article  ADS  Google Scholar 

  112. Foote, R. S., and H. W. Koch: Scintillation spectrometers for measuring the total energy of x-ray photons. Rev. Sci. Instr. 25, 746 (1954).

    Article  ADS  Google Scholar 

  113. Francis, J. E., P. R. Bell and J. C. Gundlach: Single channel analyzer. Rev. Sci. Instr. 22, 133 (1951) ; ORNL Report 1470 (1953).

    Article  ADS  Google Scholar 

  114. Francis, J. E., P. R. Bell and G. G. Kelley : Double line linear amplifier. Nucleonics 12/3, 55 (1954).

    Google Scholar 

  115. Fuller, H. W.: Numeroscope for cathode ray printing. Electronics 21/2, 98 (1948).

    Google Scholar 

  116. Garwin, R. L.: A pulse generator for the millimicrosecond range. Rev. Sci. Instr. 21, 903 (1950).

    Article  MathSciNet  ADS  Google Scholar 

  117. Garwin, R. L.: A useful fast coincidence circuit. Rev. Sci. Instr. 21, 569 (1950) ;

    Article  MathSciNet  ADS  Google Scholar 

  118. Garwin, R. L.: A useful fast coincidence circuit. Rev. Sci. Instr. 24, 618 (1953).

    Article  ADS  Google Scholar 

  119. Garwin, E. L.: Linear gate of 20 mμsec duration. Rev. Sci. Instr. 30, 373 (1959).

    Article  ADS  Google Scholar 

  120. Garwin, E. L., and A. S. Penfold : Linear gate of 200 nsec duration. Rev. Sci. Instr. 28, 116 (1957).

    Article  ADS  Google Scholar 

  121. Gass, E.: Verwendung und Schaltungstechnik von Differenzverstärkern. Elektronik 8, 349 (1959).

    Google Scholar 

  122. Gasström, R. V. : A new type of pulse height analyzer utilizing c. r. tube with phototransistor sorting element. Physica 22, 619 (1956).

    Article  ADS  Google Scholar 

  123. Gatti, E.: A stable highspeed multichannel pulse analyzer. Nuovo Cimento 11, 153 (1954). — vgl.

    Article  Google Scholar 

  124. Gatti, E.: A stable highspeed multichannel pulse analyzer. Nuclear Instr. 4, 133 (1959).

    Article  Google Scholar 

  125. Genin, R. : Un appareil à échelle logarithmique pour la mesure de l’intensité des rayonnements y. J. phys. radium 18, Suppl. 3, 36 A (1957).

    Google Scholar 

  126. Gettner, M., and W. Selove : 50 mc discriminator-scaler. Rev. Sci. Instr. 30, 942 (1959).

    Article  ADS  Google Scholar 

  127. Gilland, J. R. : Transistor circuitry for radiation counting. Rev. Sci. Instr. 30, 479 (1959).

    Article  ADS  Google Scholar 

  128. Ginzton, E. L., W. R. Hewlett, J. H. Jasberg and J. D. Noe : Distributed amplification. Proc. Inst. Radio Engrs. 36, 956 (1948).

    Google Scholar 

  129. Glass, F. M., and G. S. Hurst : A method of pulse integration using the binary scaling unit. Rev. Sci. Instr. 23, 67 (1952).

    Article  ADS  Google Scholar 

  130. Glenn, W. E.: A pulse height distribution analyzer. Nucleonics 9/6, 24 (1951).

    Google Scholar 

  131. Golay, M. J. E. : (Delay lines) Proc. Inst. Radio Engrs. 34, 138 (1946).

    Google Scholar 

  132. Goldmuntz, L. A., and H. L. Krauss : The cathode coupled clipper circuit. Proc. Inst. Radio Engrs. 36, 1172 (1948).

    Google Scholar 

  133. Gosslau, K., u. H. J. Harloff : Untersuchung über das DC- und ACVerhalten von bistabilen Kippschaltungen. Nachr. tech. Z. 8, 521 (1955).

    Google Scholar 

  134. Grabe, K. : Wirkungsweise und Dimensionierung des Schmitt-Diskriminators. Radio mentor 24, 382 (1958).

    Google Scholar 

  135. Graham, M., W. A. Higinbotham and S. Rankowitz: Dekatron drive circuit and application. Rev. Sci. Instr. 27, 1059 (1956).

    Article  ADS  Google Scholar 

  136. Gray, T. S., and H. B. Frey : Acorn diode has logarithmic range of 109. Rev. Sci. Instr. 22, 117 (1951).

    Article  ADS  Google Scholar 

  137. Green, J. R.: Large scintillator for observation of cosmic rays. Rev. S ci. Instr. 29, 10 (1958).

    Article  ADS  Google Scholar 

  138. Green, L. C., and J. B. H. Kuper : Constant current sources. Rev. Sci. Instr. 11, 250 (1940) .

    Article  ADS  Google Scholar 

  139. Greenough, M. L., W. E. Williams and J. K. Taylor: Regulated low voltage supply. Rev. Sci. Instr. 22, 484 (1951).

    Article  ADS  Google Scholar 

  140. Grim, W. M., and A. B. van Rennes : Compensation against effects of Cgk in pulse height selectors. Rev. Sci. Instr. 23, 563 (1952).

    Article  ADS  Google Scholar 

  141. Grodzins, L. : Coincidence sorter for scintillation spectrometers. Rev. Sci. Instr. 26, 1208 (1955). — The application of the XYZ-recorder to radiation studies. 2. U. N. Int. Conf. Atom. Energy, A/Conf 15/P/647 (1958).

    Article  ADS  Google Scholar 

  142. Gruhle, W. : Multivibratorschaltung für Millimikrosekunden-Impulse. Elektronik 6, 261 (1957).

    Google Scholar 

  143. Gruhle, W. : Schneller Ringzähler als elektronischer Schalter. Nuclear Instr. 3, 204 (1958).

    Article  Google Scholar 

  144. Gruhle, W. : Impuls-Zeitformer für schnelle Koinzidenzstufen. Nuclear Instr. 4, 112 (1959).

    Article  ADS  Google Scholar 

  145. Günther, H. : Stabilisierung von Gleichspannungen. Funk u. Ton 5, 124 (1951).

    Google Scholar 

  146. Haas, G.: Untersuchungen über die Zeitverzögerung der Impuls Auslösung beim monostabilen Multivibrator. Arch. el. Übtr. 9, 272 (1955).

    Google Scholar 

  147. Haas, G. : Grundlagen und Bauelemente elektronischer Ziffern Rechenmaschinen I—III. Valvo Ber. 4, 37, 123, 157 (1958).

    Google Scholar 

  148. Haidekker, A. : Transistorbestückte Zählschaltungen mit Sichtanzeige. Elektronik 7, 211, 372 (1958).

    Google Scholar 

  149. Hamburger, G. L. : Production model of the automatic a. f. response curve tracer. J. Brit. Inst. Elec. Engrs. 11, 165 (1951).

    Google Scholar 

  150. Hebb, M. H., C. W. Horton, and F. B. Jones : On the design of networks for constant time delay. J. Appl. Phys. 20, 616 (1949).

    Article  ADS  Google Scholar 

  151. Hehner, R. J., and A. Hemmendinger: Precision integrator for beam current. Rev. Sci. Instr. 28, 649 (1957).

    Article  ADS  Google Scholar 

  152. Hendrick, R. W. : Precision photomultiplier gain stabilisation. Rev. S ci. Instr. 27, 240 (1956).

    Article  ADS  Google Scholar 

  153. Hiebert, R. D., and R. J. Watts : (Fast coincidence circuit for H3 and C14 measurements) A-1 amplifier. Nucleonics 11/12, 38 (1953).

    Google Scholar 

  154. Higinbotham, W. A. : Todays pulse height analyzers. Nucleonics 14/4, 61 (1956).

    Google Scholar 

  155. Higinbotham, W. A., and S. Rankowitz : Combined current indicator and integrator. Rev. Sci. Instr. 22, 688 (1951).

    Article  ADS  Google Scholar 

  156. Hofstadter, R., and J. A. Mcintyre : γ-ray spectroscopy with crystals of NaJ. Nucleonics 7/3, 32 (1950).

    Google Scholar 

  157. Hofstadter, R., and J. A. Mcintyre : Note on the detection of coincidences and short time intervals. Rev. Sci. Instr. 21, 52 (1950).

    Article  ADS  Google Scholar 

  158. Hoogenboom, A. M. : A new method in y-ray spectroscopy. Nuclear Instr. 3, 57 (1958).

    Article  Google Scholar 

  159. Horton, W. H., J. H. Jasberg and J. D. Noe : distributed amplification : practical considerations and experimental results. Proc. Inst. Radio Engrs. 38, 748 (1950).

    Google Scholar 

  160. Howard, R. C., C. J. Savant and R. S. Neiswander: Linear to logarithmic voltage converter. Electronics 26/7, 156 (1953).

    Google Scholar 

  161. Howland, B. : Capacitor counting circuit. Electronics 21/6, 182 (1948).

    Google Scholar 

  162. Hunt, F. V., and J. F. Hersh: Wide range logarithmic voltmeter. Rev. Sci. Instr. 26, 829 (1955).

    Article  ADS  Google Scholar 

  163. Hunt, F. V., and R. W. Hickman : On electronic voltage stabilizers. Rev. Sci. Instr. 10, 6 (1939).

    Article  ADS  Google Scholar 

  164. Hunt, W. A., W. Rhinehart, J. Weber and D. J. Zaffarano: A multichannel pulse height analysis system utilizing 35 mm film record. Rev. Sci. Instr. 25, 268 (1954).

    Article  ADS  Google Scholar 

  165. Hutchinson, G. W.: Nonlinear amplifier design for pulse height analyzers. Rev. Sci. Instr. 27, 592 (1956).

    Article  ADS  Google Scholar 

  166. Hutchinson, G. W. : A soft valve scaler for intermittend fast counting. J. Sci. Instr. 34, 109 (1957).

    Article  ADS  Google Scholar 

  167. Hutchinson, G. W., and G. G. Scarrott : A high precision pulse height analyzer of moderately high speed. Phil. Mag. 42, 792 (1951) .

    Google Scholar 

  168. Jacket, A. E. : Multivibrator circuits using junction transistors. Electronic Eng. 28, 184 (1956).

    Google Scholar 

  169. Johansson, B. : Coincidence arrangement with high time resolution. Nuclear Instr. 1, 274 (1957).

    Article  Google Scholar 

  170. Johnstone, C. W. : A new pulse analyzer design. Nucleonics 11/1, 36 (1953).

    Google Scholar 

  171. Jones, G., and J. B. Warren : A fast coincidence system for the measurement of short life times. J. Sci. Instr. 33, 429 (1956).

    Article  ADS  Google Scholar 

  172. Jonker, J. L. H., A. J. W. M. Van Overbeek and P. H. De Beurs: A decade counter valve for high counting rates. Philips Research Reprt. 7, 81 (1952).

    Google Scholar 

  173. Jordan, W. H., and P. R. Bell: A general purpose linear amplifier. Rev. Sci. Instr. 18, 703 (1947).

    Article  ADS  Google Scholar 

  174. Kandiah, K. : A scaling unit employing multielectrode cold cathode tubes. AERE-Report EL/R 1112 (1953) ;

    Google Scholar 

  175. Kandiah, K. : A scaling unit employing multielectrode cold cathode tubes. Proc. Inst. Elec. Engrs. (London) 101 (II), 227 (1954). —

    Google Scholar 

  176. Kandiah, K. : Decimal counting tubes. Electronic Eng. 26, 56 (1954).

    Google Scholar 

  177. Kandiah, K., and D. E. Brown : DC amplifiers. Proc. Inst. Elec. Engrs. (London) 99 (II), 314 (1952).

    Google Scholar 

  178. Kane, V. : High voltage impedance divider for regulating photomultiplier dynodes. Rev. Sci. Instr. 28, 582 (1957).

    Article  ADS  Google Scholar 

  179. Kane, J. V. : Time to pulse height converter. Rev. Sci. Instr. 30, 374 (1959).

    Article  ADS  Google Scholar 

  180. Kaposi, A. A. : Transistor blocking oscillator for use in digital systems. Electronic Eng. 31, 480 (1959).

    Google Scholar 

  181. Keller, I. W.: Regulated transistor power supply design. Electronics 29/11, 168 (1956).

    ADS  Google Scholar 

  182. Kelley, G. G. : A high speed synchronoscope. Rev. Sci. Instr. 21, 71 (1950).

    Article  ADS  Google Scholar 

  183. Kelley, G. G. : Pulse amplitude analyzers for spectrometry. Nucleonics 10/4, 34 (1952).

    Google Scholar 

  184. Kemp, E. L. : Gated decade counter requires no feedback. Electronics 26/2, 145 (1953).

    Google Scholar 

  185. Kendall, B. R. F.: DC-amplifier for the measurement of small currents. Nuclear Instr. 3, 73 (1958).

    Article  Google Scholar 

  186. Kendall, H. W. : Advances in electronics associated with nuclear research. Ann. Rev. Nuclear Sci. 9, 343 (1959).

    Article  MathSciNet  ADS  Google Scholar 

  187. Kennedy, P. J., and P. J. Dean : Photographic method for pulse amplitude analysis. J. Sci. Instr. 36, 126 (1959).

    Article  ADS  Google Scholar 

  188. Kerns, Q. A.: Improved time response in scintillation counting. Inst. Radio Engrs. Trans. Nucl. Sci. NS-3 (Nr. 4), 114 (1956).

    Google Scholar 

  189. Keuffel, J. W. : A simplified chronotron-type timing circuit. Rev. Sci. Instr. 20, 197 (1949) ; vgl.

    Article  ADS  Google Scholar 

  190. Keuffel, J. W. : A simplified chronotron-type timing circuit. Phys. Rev. 87, 942 (1952).

    Article  ADS  Google Scholar 

  191. Koch, H. W., and R. W. Johnston : Multichannel pulse height analyzers. Nucl. Sci. Series Repts. 20, Nat. Acad. Sci. Washington (1957).

    Google Scholar 

  192. Konigsberg, R. L. : Operational amplifiers. Advances in Electronics and Electron Phys. 11, 225 (1959).

    Article  Google Scholar 

  193. Koontz, P. G., C. W. Johnstone, G. R. Keepin and J. D. Gallagher : New multichannel recording time delay analyzer. Rev. Sci. Instr. 26, 546 (1955).

    Article  ADS  Google Scholar 

  194. Krakauer, S. : Electrometer triode follower. Rev. Sci. Instr. 24, 496 (1953).

    Article  ADS  Google Scholar 

  195. Kramer, A. S. : Cathode ray storage tubes for direct viewing. Electronics 30/1, 40 (1957).

    Google Scholar 

  196. Krauss, H. L.: Graphical solutions for cathode followers. Electronics 20/1, 116 (1947).

    Google Scholar 

  197. Kroebel, W.: Eine Methode zur Eliminierung der schädlichen Kapazitäten bei der Erzeugung und Verstärkung von Spannungssprüngen. Z. angew. Phys. 6, 293 (1954).

    Google Scholar 

  198. Kröner, K. : Dimensionierung und Berechnung von elektronisch stabilisierten Gleichspannungsquellen. Elektronik 6, 43, 107, 139, 168 (1957).

    Google Scholar 

  199. Kubitschek, H. E.: Lossless anticoincidence circuit. Rev. Sci. Instr. 23, 567 (1952).

    Article  ADS  Google Scholar 

  200. Kurshan, J., and R. D. Lohman : On the design of current regulated power supplies. Rev. Sci. Instr. 24, 334 (1953).

    Article  ADS  Google Scholar 

  201. Lefevre, H. W., and J. T. Russel: Vernier chronotron. Rev. Sci. Instr. 30, 159 (1959).

    Article  ADS  Google Scholar 

  202. Lepri, F., L. Mezzetti and G. Stoppini : A new circuit for the measurements of very short delays. Rev. Sci. Instr. 26, 936 (1955).

    Article  ADS  Google Scholar 

  203. LiebendÖrfer, H.: Ein neuer Kaltkathodenzählring mit direkter Ziffernanzeige. Elektronik 8, 361 (1959).

    Google Scholar 

  204. Lord, A. V., and S. J. Lent : High frequency electronic counter. Wir. Eng. 33, 220 (1956).

    Google Scholar 

  205. Lovering, W. F. : Three phase three valve multivibrator. Electronic Eng. 30, 94 (1958).

    Google Scholar 

  206. Macdonald, J. R. : An AC cathode follower circuit of very high input impedance. Rev. Sci. Instr. 25, 144 (1954).

    Article  ADS  Google Scholar 

  207. MacDonald Smith, J. : Millimicrosecond blocking oscillators. Electronic Eng. 29, 180 (1957).

    Google Scholar 

  208. Macfadien, K. A., and T. A. Holbeche : Improved technique for the measurements of contact potential differences. J. Sci. Instr. 34, 101 (1957).

    Article  ADS  Google Scholar 

  209. Macnichol, E. F., and J. A. Jakobs : Electronic device for measuring reciprocal time intervals. Rev. Sci. Instr. 26, 1176 (1955).

    Article  ADS  Google Scholar 

  210. Macq, P. C., and J. F. Vervier : Fast delay coincidence circuit. Rev. S ci. Instr. 28, 843 (1957).

    Article  ADS  Google Scholar 

  211. Madey, R., and G. Farly : An electronic voltage integrator. Rev. Sci. Instr. 25, 275 (1954). Vgl.

    Article  ADS  Google Scholar 

  212. Miller, S. E. : Electronics 14/11, 27 (1941).

    Google Scholar 

  213. Maeder, D. : γ-ray scintillation spectrometer with logarithmic pulse height response. Rev. Sci. Instr. 26, 805 (1955).

    Article  ADS  Google Scholar 

  214. Maeder, D. : Information handling systems for nuclear measurements. Nuclear Instr. 2, 130 (1958).

    Article  ADS  Google Scholar 

  215. Maeder, D. : Ein dekadisches Impulszählsystem mit Umlaufspeicherung in einer Verzögerungsleitung. Helv. Phys. Acta 29, 459 (1956). —

    Google Scholar 

  216. Maeder, D. : Decimal memory systems. Nuclear Instr. 2, 121 (1958).

    Article  ADS  Google Scholar 

  217. Maeder, D., u. H. Medicus : Helv. Phys. Acta 23, Suppl. III, 175 (1950).

    Google Scholar 

  218. Maeder, D., U. P. Staehelin : Die komplexe β-Umwandlung von Na25 und Al25. Helv. Phys. Acta 28, 193 (1955).

    Google Scholar 

  219. Magee, F. I., P. R. Bell and W. H. Jordan: Improved overload response of the A-1 amplifier. Rev. Sci. Instr. 23, 30 (1952).

    Article  ADS  Google Scholar 

  220. Mainstone, J. S. : Linear sawtooth time base. J. Sci. Instr. 36, 478 (1959).

    Article  ADS  Google Scholar 

  221. Malmfors, K. G., J. Kjellman and A. Nilsson: Time of flight technique applied to fast neutrons. Nuclear Instr. 1, 186 (1957).

    Article  Google Scholar 

  222. Mangold, H. : Automatische Amplitudenregelung in Tonstudios. Elektron. Rundschau 9, 26 (1955).

    Google Scholar 

  223. Mansford, H. L., and K. M. I. Khan : An amplitude/frequency response display using a ratio method. Electronic Eng. 30, 541 (1958).

    Google Scholar 

  224. Mcauslan, J. H. L., and K. J. Brimley : Polycathode counter tube applications. Electronic Eng. 24, 408 (1952).

    Google Scholar 

  225. Mcauslan, J. H. L., and K. J. Brimley : Polycathode counter tube applications. Electronics 26/ 11, 138 (1953).

    Google Scholar 

  226. Mccollom, K. A., D. R. De Boisblanc and J. B. Thompson: Sensitive measurement of pulse amplifier gain. Nucleonics 16/1, 74 (1958).

    Google Scholar 

  227. Meu Nier, R., and G. Davidson : Fast read-out chronotron system. Rev. Sci. Instr. 28, 1010 (1957).

    Article  ADS  Google Scholar 

  228. Meunier, R., et J. Teiger : Circuit de coincidence rapide a 3 diodes. Nuclear Instr. 5, 148 (1959).

    Article  ADS  Google Scholar 

  229. Mey, J. : 10 mc pulse amplitude discriminator. Rev. Sci. Instr. 30, 282 (1959).

    Article  ADS  Google Scholar 

  230. Meyer, M. A. : Pulse lengthener circuits. Nuclear Instr. 1, 62 (1957).

    Article  Google Scholar 

  231. Meyer-BrÖtz, G.: Modulatoren zur Umsetzung sehr kleiner Gleichspannungen in Wechselspannungen. Telefunken Ztg. 32, 189 (1959).

    Google Scholar 

  232. Mezger, R. : Feedback amplifier for cathode ray oscilloscope. Electronics 17/4, 126 (1944).

    Google Scholar 

  233. Miller, R. H.: Simplified coincidence circuits using transistors and diodes. Rev. Sci. Instr. 30, 395 (1959).

    Article  ADS  Google Scholar 

  234. Millman, J., and T. H. Puckett : Accurate linear bidirectional diode gates. Proc. Inst. Radio Engrs. 43, 29 (1955).

    Google Scholar 

  235. Moody, N. F., W. J. Battell, W. D. Howell and R. H. Taplin : Comprehensive counting systemm. Rev. Sci. Instr. 22, 551 (1951) ;ferner S. 439, 442, 455, 555.

    Article  ADS  Google Scholar 

  236. Moody, N. F., G. J. R. Maclusky and M. O. Deighton : Millimicrosecond pulse techniques. Electronic Eng., 24, 287, 330 (1952).

    Google Scholar 

  237. Muller, F. A.: A fast scaling stage. Nuclear Instr. 4, 115 (1959).

    Article  ADS  Google Scholar 

  238. Nakamura, M. : 40 mc scaler. Rev. Sci. Instr. 28, 1015 (1957).

    Article  ADS  Google Scholar 

  239. Neddermeyer, S. H., E. J. Althaus, W. Allison and E. R. Schatz: The measurement of ultra short time intervals. Rev. Sci. Instr. 18, 488 (1947).

    Article  ADS  Google Scholar 

  240. Neher, L. K. : Notes on the design of glow discharge voltage stabilizers for photomultiplier power supplies. Nuclear Instr. 5, 95 (1959).

    Article  ADS  Google Scholar 

  241. Neilson, G. C., and D. B. James : Time of flight spectrometer for fast neutrons. Rev. Sci. Instr. 26, 1018 (1955).

    Article  ADS  Google Scholar 

  242. Nettel, S. J. : Periodic sampling logarithmic amplifier. Rev. Sci. Instr. 28, 37 (1957).

    Article  ADS  Google Scholar 

  243. Northrop, J. A. and R. H. Stokes : Continuous energy monitor for the extracted beam of a cyclotron. Rev. Sci. Instr. 29, 287 (1958).

    Article  ADS  Google Scholar 

  244. Novey, T. B., and D. W. Engelkemeir: Double delay line pulse shaping. Rev. Sci. Instr. 22, 841 (1951) .

    Article  ADS  Google Scholar 

  245. Offner, F. F. : Stable wide range DC amplifier. Rev. Sci. Instr. 25, 579 (1954).

    Article  ADS  Google Scholar 

  246. Ogilvie, K. W., and D. Paix : A pulse height storage circuit of high stability. Nuclear Instr. 4, 164 (1959).

    Article  ADS  Google Scholar 

  247. O’neill, G. K. : Direct reading analyzer for short time intervals. Rev. Sci. Instr. 26, 285 (1955).

    Article  ADS  Google Scholar 

  248. Orman, P.R. : A printed distributed amplifier. Nuclear Instr. 354,1(1957).

    Article  Google Scholar 

  249. Orman, P. R., and F. H. Wells : Millimicrosecond pulse shaping circuit. Nuclear Instr. 1, 183 (1957).

    Article  Google Scholar 

  250. Orr, L. W. : Wideband amplitude distribution analysis of voltage sources. Rev. Sci. Instr. 25, 894 (1954).

    Article  ADS  Google Scholar 

  251. Palic, P. : Aperiodische Kipp-Flipflopstufe für die E 1 T. Elektronik 4, 36 (1955).

    Google Scholar 

  252. Parshad, R., and A. Sagar: Coincidence technique for decade scaling from binary flipflop counters. Rev. Sci. Instr. 24, 542 (1953).

    Article  ADS  Google Scholar 

  253. Patzelt, R. : Schneller, sehr konstanter Impulsverstärker. Sitzber. Österr. Akad. Wiss. 165, 179 (1956).

    Google Scholar 

  254. Patzelt, R. : Eine Schaltung zur Verlängerung elektrischer Impulse samt Impulstor.Sitzber. Österr. Akad. Wiss. 165, 229 (1956).

    Google Scholar 

  255. Penfold, A. S. : Linear amplifier for negative pulses. Rev. Sci. Instr. 29, 765 (1958).

    Article  ADS  Google Scholar 

  256. Pietri, G. : Stabilisation du gain des photomultiplicateurs par des circuits extérieurs. J. phys. radium 19, 111 A (1958).

    Article  Google Scholar 

  257. Piloty, R. : Die Dimensionierung der Eccles-Jordan-Schaltung. Arch. Elektr. Übertr. 7, 537 (1953).

    Google Scholar 

  258. Porat, D. I. : Highspeed scaling with a decade counter tube. Rev. Sci. Instr. 27, 150 (1956).

    Article  ADS  Google Scholar 

  259. Porter, W. C. : Extending the efficient range of GM-counters. Nucleonics 11/3, 32 (1953).

    Google Scholar 

  260. Post, R. F. : Performance of pulsed photomultipliers. Nucleonics 10/5, 46 (1952).

    MathSciNet  Google Scholar 

  261. Prescott, J. R. : The use of multigrid tubes as electrometers. Rev. Sci. Instr. 20, 553 (1949).

    Article  ADS  Google Scholar 

  262. Pressmann, R. : How to design bistable multivibrators. Electronics 26/4, 158 (1953).

    Google Scholar 

  263. Price, R. L. : Cascode audio amplifier has low noise level. Electronics 27/3, 156 (1954).

    Google Scholar 

  264. Putman, J. L.: Analysis of spurious counts in Geiger counters. Proc. Phys. Soc. (London) 61, 312 (1948).

    Article  ADS  Google Scholar 

  265. Quirk, C. J. : Low frequency multivibrators. Electronics 18/12, 350 (1945).

    Google Scholar 

  266. Reiffel, L. : Passive pulse shaping circuits. Rev. Sci. Instr. 22, 214, 704 (1951).

    Article  ADS  Google Scholar 

  267. Ritchie, C. C., and R. W. Young : The design of biased function generators. Electronic. Eng. 31, 347 (1959).

    Google Scholar 

  268. Roberts, B. W., K. E. Perry and R. G. Fluharty: An improved resolving time measuring device. Rev. Sci. Instr. 21, 790 (1950).

    Article  ADS  Google Scholar 

  269. Rose, G. : Fundamente der Elektronik. Berlin : Verlag f. Radio-FotoKino-Technik 1958.

    Google Scholar 

  270. Ryan, R. D. : A modified Miller time base circuit. J. Sci. Instr. 31, 73 (1954).

    Article  ADS  Google Scholar 

  271. Samueli, J., and A. Sarazin: Convertisseur temps-amplitude à temps de résolution 10-10 sec. J. phys. radium 19, 109 A (1958).

    Article  Google Scholar 

  272. Sarazin, A., J. Samueli et G. Ducros : Mésure de temps de montée d’impulsions électriques inférieurs à la millimicroseconde. Nuclear Instr. 5, 44 (1959).

    Article  ADS  Google Scholar 

  273. Sarma, G. D.: On distributed amplification. Proc. Inst. Elec. Engrs. (London) 102 (B), 689 (1955).

    Google Scholar 

  274. Schlegel, H. : Elemente der Impulstechnik : Impulsverstärker. Radio mentor 17, 554 (1951).

    Google Scholar 

  275. Schlesinger, K.: Low frequency compensation for amplifiers. Electronics 21/2, 103 (1948).

    Google Scholar 

  276. Schoenwetter, H. K. : Improved fast scaler. Rev. Sci. Instr. 24, 515 (1953).

    Article  ADS  Google Scholar 

  277. Schultz, M. A. : Linear amplifiers. Proc. Inst. Radio Engrs. 38, 475 (1950).

    Google Scholar 

  278. Schultz, H. L., G. F. Pieper and L. Rosler : Multichannel systems for pulse height and time of flight analysis. Rev. Sci. Instr. 27, 437 (1956).

    Article  ADS  Google Scholar 

  279. Schumann, R. W., and J. P. Mcmahon: Argonne 256 channel pulse height analyzer. Rev. Sci. Instr. 27, 675 (1956).

    Article  ADS  Google Scholar 

  280. Seefeldner, W. Ein NF-Impulsgenerator mit Unabhängigkeit von Impulsform und Impulsfrequenz. Z. angew. Phys. 6, 282 (1954).

    Google Scholar 

  281. Shen, D. W. C. : Approximating nonlinear functions. Electronic Eng. 29, 434 (1957).

    Google Scholar 

  282. Shenk, E. R. : Multivibrator, applied theory and design. Electronics 17/1, 136; 17/2, 140; 17/3, 138 (1944).

    Google Scholar 

  283. Shrader, E. F. : Highspeed short resolving time coincidence circuit for use with scintillation counters. Rev. Sci. Instr. 21, 883 (1950).

    Article  ADS  Google Scholar 

  284. Simhi, M., and M. Birk : Sensitive single channel pulse height analyzer. Rev. Sci. Instr. 29, 768 (1958).

    Article  ADS  Google Scholar 

  285. Singer, S., L. K. Neher and R. A. Ruehle : Pulsed photomultiplier for fast scintillation counting. Rev. Sci. Instr. 27, 40 (1956).

    Article  ADS  Google Scholar 

  286. Sokal, N. O. : Cathode follower design charts. Electronics 26/9,192 (1953) .

    Google Scholar 

  287. Solms, S. J., W. L. Nastuk and J. T. Alexander : Development of a high fidelity preamplifier for use in the recording of bioelectric potentials with intracellular electrodes. Rev. Sci. Instr. 24, 960 (1953).

    Article  ADS  Google Scholar 

  288. Spighel, M., et L. Penege : Sélecteur d’amplitude pour impulsions, à durée d’analyse constante. J. phys. radium 18/3, 19 A (1957).

    Google Scholar 

  289. Spinrad, R.: Core saturation blocking oscillator control. Rev. Sci. Instr. 30, 647 (1959).

    Article  ADS  Google Scholar 

  290. Stearman, G. H.: The use of dekatrons for pulse distribution. Electronic Eng. 31, 69 (1959).

    Google Scholar 

  291. Sterzer, F. : Pulse amplifier with sub-millimicrosecond rise time. Rev. Sci. Instr. 29, 1133 (1958).

    Article  ADS  Google Scholar 

  292. Strauch, K. : Detection of high energy particles with a fast coincidence system. Rev. Sci. Instr. 24, 283 (1953).

    Article  ADS  Google Scholar 

  293. Sugarman, R.: Sampling oscilloscope for statistically varying pulses. Rev. Sci. Instr. 28, 933 (1957).

    Article  ADS  Google Scholar 

  294. Sunstein, D. : Photoelectric waveform generator. Electronics 22/2, 100 (1949).

    Google Scholar 

  295. Taeger, W.: Magnetische Spannungsgleichhalter. Elektronik 6, 265 (1957).

    Google Scholar 

  296. Thresher, J. J., C. P. Van Zyl, R. G. P. Voss and R. Wilson : Large scintillators as threshold detectors for high energy processes. Rev. Sci. Instr. 26, 1186 (1955).

    Article  ADS  Google Scholar 

  297. Ticho, H. K. : A pulse timing circuit for cosmic ray research. Rev. Sci. Instr. 18, 271 (1947).

    Article  ADS  Google Scholar 

  298. Ticno, H. K., and J. Gauger: Fast timing of scintillation pulses. Rev. Sci. Instr. 27, 354 (1956) .

    Article  ADS  Google Scholar 

  299. Titterton, E. W. : A microsecond interval timer. Rev. Sci. Instr. 23, 96 (1952).

    Article  ADS  Google Scholar 

  300. Tobin, M. W., H. Grundfest and R. L. Schoenfeld : Instantaneous peak voltmeter. Rev. Sci. Instr. 22, 189 (1951).

    Article  ADS  Google Scholar 

  301. Tollestrup, A. V., u. J. B. Lindsay : Fast gate. CERN-Report SC. Div. 58–20 (1958).

    Google Scholar 

  302. Turk, S. : Response of a RC-divider. Electronic Eng. 30, 608 (1958).

    Google Scholar 

  303. Yalvo-Techn. Inform. f. d. Industr.: Zählschaltungen mit der dekadischen Ziffernröhre E 1 T. Heft 2 5, 4 S (1953); 15 S, 21 S (1954).

    Google Scholar 

  304. Yalvo-Techn. Transistor-Zählgeräte. Heft 11 H (1956), 21 H(1959).

    Google Scholar 

  305. Van Rennes, A. B. : Pulse amplitude analysis in nuclear research. Nucleonics; 107 10/7, 20; 10/8, 22; 10/9, 32, 50 (1952).

    Google Scholar 

  306. Vaughn, W. W., V. C. Rhoden, E. E. Wilson and R. H. Barnett: Developments in radiation detection equipment for geology. 2. UN. Intern. Conf. Atom. Energy A/Conf/15/P/1909 (1958).

    Google Scholar 

  307. Verhagen, C. M.: A survey of the limits of DC amplification. Proc. Inst. Radio Engrs. 41, 615 (1953).

    Google Scholar 

  308. Wallman, H., A. B. Macnee and C. P. Gadsden : A low noise amplifier. Proc. Inst. Radio Engrs. 36, 700 (1948).

    Google Scholar 

  309. Warhanek, H. : Einkanalregistriergerät für kernphysikalische Präzisionsmessungen. Sitzber. Österr Akad. Wiss. 165, 237 (1956).

    Google Scholar 

  310. Warman, J. B., and D. M. Bibb : Transistor circuits for use with gas filled cathode counter valves. Electronic Eng. 30, 136 (1958).

    Google Scholar 

  311. Watkins, D. A. : The 10 channel electrostatic pulse analyzer. Rev. Sci. Instr. 20, 495 (1949).

    Article  ADS  Google Scholar 

  312. Weber, W., C. W. Johnstone and L. Cranberg : Time to pulse height converter for measurements of millimicrosecond time intervals. Rev. Sci. Instr. 27, 166 (1956).

    Article  ADS  Google Scholar 

  313. Weinzierl, P.: New timing method for scintillation events in fast coincidence experiments. Rev. Sci. Instr. 27, 226 (1956).

    Google Scholar 

  314. Weinzierl, P.: Eine neue Koinzidenzanordnung kleiner Auflösungsbreite. Sitzber. Österr. Akad. Wiss. 165, 195 (1956).

    Google Scholar 

  315. Weitbrecht, R. H. : Current integrator for astronomic photoelectric photometry. Rev. Sci. Instr. 28, 883 (1957).

    Article  ADS  Google Scholar 

  316. Wells, F. H.: Pulse circuits for the millimicrosecond range. J. Brit. Inst. Radio Engrs. 11, 491 (1951).

    Google Scholar 

  317. Wells, F. H. : Fast pulse circuit techniques for scintillation counters. Nucleonics 10/4, 28 (1952).

    Google Scholar 

  318. Wells, F. H. : A fast amplitude discriminator and scale of ten counting unit for nuclear work. J. Sci. Instr. 29, 111 (1952).

    Article  ADS  Google Scholar 

  319. Westcott, C. H., J. S. Greenberg and J. S. Kirkaldy : An experimental study of counter losses due to dead-time effects. Can. J. Phys. 31, 859 (1953).

    Article  ADS  Google Scholar 

  320. Wheeler, H. A. : Wideband amplifiers for TV. Proc. Inst. Radio Engrs. 27, 429 (1939).

    Google Scholar 

  321. Whetstone, A., B. Allison, E. G. Muirhead and J. Halpern : Photoproton scintillation spectrometer. Rev. Sci. Instr. 29, 415 (1958).

    Article  ADS  Google Scholar 

  322. White, D. H., and G. W. Hutchinson : A fast coincidence circuit. Nuclear Instr. 1, 331 (1957).

    Article  Google Scholar 

  323. Wiegand, C.: Distributed coincidence circuit. Rev. Sci. Instr. 21, 975 (1950).

    Article  ADS  Google Scholar 

  324. Wilkinson, D. H.: A stable 99 line channel pulse amplitude analyzer for slow counting. Proc. Cambrigde Phys. Soc. 46, 508 (1950).

    Article  ADS  Google Scholar 

  325. Wilkinson, D. H.: A stable 99 line channel pulse amplitude analyzer for slow counting. J. Sci. Instr. 27, 36 (1950).

    Article  ADS  Google Scholar 

  326. Wolfe, B., A. Silverman and J. W. De Wire : Identlfication of charged particles with a crystal telescope. Rev. Sci. Instr. 26, 504 (1955).

    Article  ADS  Google Scholar 

  327. Wouk, W. : High voltage supply uses electronic filter. Electronics 28/8, 154 (1955).

    Google Scholar 

  328. Wright, G. T. : A single channel pulse height discriminator of high speed and stability. J. Sci. Instr. 29, 157 (1952).

    Article  ADS  Google Scholar 

  329. Yarwood, J., and D. H. Lecroisette : DC amplifiers. ElectronicEng. 26, 14, 114 (1954).

    Google Scholar 

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Gruhle, W. (1960). Anhang. In: Elektronische Hilfsmittel des Physikers. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-52748-7_7

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