Export citation

Export citation

Choose format for download:

Download Citation
  • Access by Xinjiang University

The neutron interferometer as a device for illustrating the strange behavior of quantum systems

Daniel M. Greenberger

Daniel M. Greenberger

  • City College of the City University of New York, New York, New York, 10031

Rev. Mod. Phys. 55, 875 – Published 1 October, 1983

DOI: https://doi.org/10.1103/RevModPhys.55.875

Abstract

The neutron interferometer is a unique instrument that allows one to construct a neutron wave packet of macroscopic size, divide it into two components separated by centimeters, and then coherently recombine them. A number of experiments clearly showing the difference between quantum and classical theory have been performed with it, which are suitable for presentation in elementary quantum courses. This article presents a simple mathematical model of the interferometer, which can be used to illustrate clearly many of the surprising features of quantum systems. For example, one can describe an experiment to determine which component beam the neutron takes (an analog of the two-slit electron experiment). One can then trace in detail the loss of coherence of the wave function, rather than merely invoke the usual "handwaving" uncertainty arguments. The author discusses the effect of gravity on the neutron beam [the classic COW (Colella, Overhauser, and Werner) experiment], including a simple analysis in an accelerated reference frame, and its relation to the equivalence principle, the red shift, and the twin paradox. Also described are the effect of rotation of the neutron by 360° to change its phase, the effect on the wave function of measuring the absence of the particle from a beam ("Dicke's paradox"), and a realizable version of Wheeler's "delayed-choice" experiments, as well as their relation to the problem of "Schrödinger's cat." The treatment is suitable for bright undergraduates and first-year graduate students.

References (64)

  1. Adler, R. J., M. J. Bazin, and M. Schiffer, 1975, Introduction to General Relativity (McGraw-Hill, New York)
  2. Aharonov, Y., and D. Bohm, 1959, Phys. Rev. 115, 485
  3. Anandan, J., 1977, Phys. Rev. D 15, 1448
  4. Anandan, J., 1979, Nuovo Cimento A 53, 221
  5. Aspect, A., J. Dalibard, and G. Roger, 1982, Phys. Rev. Lett. 49, 1804
  6. Ballentine, L. E., 1970, Rev. Mod. Phys. 42, 358
  7. Batterman, B. W., and H. Cole, 1964, Rev. Mod. Phys. 36, 681
  8. Belinfante, F. J., 1975, Measurements and Time Reversal in Objective Quantum Theory (Pergamon, Oxford)
  9. Bernstein, H., 1979, in Neutron Interferometry, edited by U. Bonse and H. Rauch (Oxford University, Oxford), p. 231
  10. Bernstein, H., and A. V. Phillips, 1981, Sci. Am. 245, (July), p. 122
  11. Bonse, U., and W. Graeff, 1977, in X-Ray Optics, edited by H.-J. Queisser, Vol. 22 of Topics in Applied Physics (Springer, Berlin), p. 93
  12. Bonse, U., and M. Hart, 1965a, Appl. Phys. Lett. 6, 155
  13. Bonse, U., and M. Hart, 1965b, Z. Phys. 188, 154
  14. Bonse, U.M. HartBonse, U., and H. Rauch, 1979, Eds., Neutron Interferometry (Oxford University, Oxford)
  15. Braginsky, V. B., and V. I. Panov, 1971, Zh. Eksp. Teor. Fiz. 61, 873 [Sov. Phys.—JETP 34, 464 (1971)]
  16. Byrne, J., 1978, Nature 275, 188
  17. Colella, R., A. W. Overhauser, and S. A. Werner, 1975, Phys. Rev. Lett. 34, 1472
  18. d'Espagnat, B., 1976, Conceptual Foundations of Quantum Mechanics, 2nd ed. (Benjamin, New York)
  19. DeWitt, B. S., and R. N. Graham, 1971, Am. J. Phys. 39, 724
  20. Dicke, R. H., 1964, The Theoretical Significance of Experimental Relativity (Gordon and Breach, New York)
  21. Dicke, R. H., 1981, Am. J. Phys. 49, 925
  22. Eotvos, R. V., D. Pekar, and E. Fekete, 1922, Ann. Phys. 68, 11
  23. Goldstein, H., 1980, Classical Mechanics, 2nd ed., Sec. 5-9 (McGraw-Hill, New York)
  24. Greenberger, D. M., 1968, Ann. Phys. (N.Y.) 47, 116
  25. Greenberger, D. M., 1979, Am. J. Phys. 47, 35
  26. Greenberger, D. M., 1981, Phys. Rev. D 23, 1460
  27. Greenberger, D. M., 1982, in Physics as Natural Philosophy (festschrift volume for L. Tisza), edited by A. Shimony and H. Feshbach (MIT, Cambridge, Mass.), p. 178
  28. Greenberger, D. M., M. Horne, C. Shull, and A. Zeilinger, 1983, in Proceedings of the International Symposium on Quantum Mechanics (Physical Society of Japan, Tokyo, in press)
  29. Greenberger, D. M., and A. W. Overhauser, 1979, Rev. Mod. Phys. 51, 43
  30. Greenberger, D. M., and A. W. Overhauser, 1980, Sci. Am. 242, (May), 66
  31. Hartle, J. B., 1968, Am. J. Phys. 36, 704
  32. Henneberger, W. C., and R. N. Zitter, 1983, Am. J. Phys. 51, 464
  33. James, R. W., 1963, in Solid State Physics, edited by F. Seitz and D. Turnbull (Academic, New York), Vol. 15, p. 53
  34. Jammer, M., 1974, The Philosophy of Quantum Mechanics (Wiley, New York)
  35. Kaiser, H., S. A. Werner, and E. A. George, 1983, Phys. Rev. Lett. 50, 560
  36. Klein, A. G., and G. I. Opat, 1976, Phys. Rev. Lett. 37, 238
  37. Klein, A. G., G. I. Opat, and W. A. Hamilton, 1983, Phys. Rev. Lett. 50, 563
  38. Klein, A. G., and S. A. Werner, 1983, Rep. Prog. Phys. 46, 259
  39. Landau, L. D., and E. M. Lifschitz, 1977, Quantum Mechanics, 3rd ed. (Addison-Wesley, Reading, Mass.)
  40. Merzbacher, E., 1970, Quantum Mechanics, 2nd ed. (Wiley, New York)
  41. Overhauser, A. W., and R. Colella, 1974, Phys. Rev. Lett. 33, 1237
  42. Overhauser, A. W., and R. Colella, 1980, Am. Scientist 68, (Jan.), 70
  43. Rauch, H., and D. Petrascheck, 1979, in Neutron Diffraction, Vol. 6 of Topics in Current Physics (Springer, Berlin), Chap. 9
  44. Rauch, H., W. Treimer, and U. Bonse, 1974, Phys. Lett. A 47, 369
  45. Rauch, H., A. Zeilinger, G. Badurek, A. Wilfing, W. Bauspiess, and U. Bonse, 1975, Phys. Lett. A 54, 425
  46. Renninger, M., 1960, Z. Phys. 158, 417
  47. P. G. Roll, P. Kratkov, and R. H. Dicke, 1967, Ann. Phys. (N.Y.) 26, 442
  48. Rosen, G., 1972, Am. J. Phys. 40, 683
  49. Schrödinger, E., 1935, Naturwissenschaften 23, 807
  50. Scully, M. O., R. Shea, and J. D. McMullen, 1978, Phys. Rep. 43, 485
  51. Shimony, A., 1963, Am. J. Phys. 31, 755
  52. Shull, C. G., 1968, Phys. Rev. Lett. 21, 1585
  53. Squires, G. L., 1978, Thermal Neutron Scattering (Cambridge University, Cambridge), Chap. 6
  54. Staudenmann, J.-L., S. A. Werner, R. Colella, and A. W. Overhauser, 1980, Phys. Rev. A 21, 1419
  55. Summhammer, J., G. Badurek, H. Rauch, and U. Kischko, 1982, Phys. Lett. A 90, 110
  56. Weinberg, S., 1972, Gravitation and Cosmology (Wiley, New York)
  57. Werner, S. A., 1980, Phys. Today 33 (Dec.), 24
  58. Werner, S. A., R. Colella, A. W. Overhauser, and C. F. Eagen, 1975, Phys. Rev. Lett. 35, 1053
  59. Wheeler, J. A., 1978, in Mathematical Foundations of Quantum Theory, edited by A. R. Marlow (Academic, New York)
  60. Wheeler, J. A.Wheeler, J. A., and W. H. Zurek, 1983, Eds., Quantum Theory and Measurement (Princeton University, Princeton, in press)
  61. Wigner, E. P., 1961, Remarks on the Mind-Body Question, in The Scientist Speculates, edited by I. J. Good (Heinemann, London/Basic Books, New York)
  62. Wigner, E. P., 1963, Am. J. Phys. 31, 6
  63. Wigner, E. P., 1967, Symmetries and Reflections (Indiana University, Bloomington), p. 171
  64. Zeilinger, A., 1981, Nature 294, 544

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation