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The photonic band edge laser: A new approach to gain enhancement
1.J. P. Dowling and C. M. Bowden, in Principles and applications of photonic band gap structures, edited by J. W. Haus and P. L. Knight, J. Mod. Opt. (in press), special issue.
2.J. L. Jewell et al., IEEE J. Quantum Electron. 27, 1332 (1991);
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3.J. P. Dowling and C. M. Bowden, Phys. Rev. A 46, 612 (1992).
4.The form of the dispersion relation has been known for a long time within the context of reflective coatings. See M. Born and E. Wolf, Principles of Optics, 6th ed. (Pergamon, Oxford, 1980), Sec. 1.6.5.
5.For a review of photonic band gap structures and their properties, see Development and applications of photonic band gap materials, edited by C. M. Bowden, J. P. Dowling, and H. O. Everitt, J. Opt. Soc. Am. B 10, 279 (1993), special issue.
6.The large effective mass of the electron near an electronic band edge is a well-known phenomenon in solid state physics. See, for example, C. M. Quinn, An Introduction to the Quantum Chemistry of Solids (Clar endon, Oxford, 1973), Sec. 3.1.
7.We use a modified version of a split-step beam propagation technique that one of us (M. S.) has developed. See, for example, M. D. Feit and J. A. Fleck, Jr., Appl. Opt. 17, 3990 (1978);
7.J. V. Moloney, M. R. Belic, and H. M. Gibbs, Opt. Commun. 41, 379 (1982);
7.M. Scalora and M. E. Crenshaw, “A beam propagation method that handles reflections" (unpublished).
8.S. Adachi, J. Appl. Phys. 58, Rl (1985).
9.J. P. Dowling, M. O. Scully, and F. DeMartini, Opt. Commun. 82, 415 (1991).
10.H. Yokoyama et al., Opt. Quantum Electron. 24, 5245 (1992).
11.A. Ibaraki et al., IEEE J. Quant. Electron. 27, 1386 (1991).
12.H. C. Casey, Jr. and M. B. Panish, Heterostructure Lasers: Part A, Fundamental Principles (Academic, New York, 1978), Sec. 2.10.
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