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Polarized Raman Studies of Anisotropic RbClO3 Crystals by the Immersion Technique
1.R. Loudon, Advan. Phys. 13, 423 (1964);
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2.C. M. Hartwig, E. Wiener‐Avnear, J. Smit, and S. P. S. Porto, Phys. Rev. 3, 2078 (1971).
3.D. Hwang, R. Kobliska, and S. A. Solin, in Proceedings of the Second International Conference on Light Scattering in Solids, edited by M. Balkanski (to be published).
4.D. Hwang and S. A. Solin (unpublished).
5.R. W. G. Wycoff, Crystal Structures (Wiley, New York, 1964), 2nd ed., Vol. 2, Chap. VIIA, pp. 381 and 457.
6.T. Petrov, E. Treivus, and A. Kasatkin, Growing Crystals from Solution (Consultants Bureau, New York, 1969).
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9.R. Savoie and J. Tremblay, J. Opt. Soc. Am. 57, 329 (1967). These authors show that immersion in an index matching liquid can enhance the Toronto arc excited Raman intensity of conglomerates composed of many good optical quality crystals. They conclude, however, that this technique is relatively ineffective if the crystals are obtainable only as thin plates.
9.See also W. S. Otaguro, E. Wiener‐Avnear, and S. P. S. Porto [Appl. Phys. Letters 18, 499 (1971)].
10.H. Swanson, N. Gilfrich, M. Cook, R. Stinchfield, and P. Parks, NBS Circ. 539, Vol. 8, p. 47.
11.The Handbook of Chemistry and Physics, edited by R. C. Weast (The Chemical Rubber Publishing Co., Cleveland, 1970), 51st ed. The indices referenced here were measured at 5893 Å.
12.Manufactured by Andonian Associates, 26 Thayer Rd., Waltham, Mass.
13.A. C. Sinnock and B. L. Smith, Phys. Rev. 181, 1297 (1969).
14.A. Anderson and R. Savoie, J. Chem. Phys. 43, 3468 (1965).
15.W. Brya, Phys. Rev. Letters 26, 1114 (1971).
16.G. Burns and B. A. Scott, Phys. Rev. Letters 25, 1191 (1970).
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