Fredorenko, A. I. et al.; “The Expitaxial Growth of IV-VI Heterostructures and Superlattices on (001) Si” Thin Solid Films 267, Oct. 15, 1995, pp. 134-137. |
Pinczolits M et. At.; “Direct Formation of Self—Assembled Quantum Dots Under Tensile Strain by Heteroepitaxy of PbSE on PBTe (111)” Applied Physics. New York, vol. 73, No. 2, Jul. 13, 1998, pp. 250-252. |
Harman, T C. “Thermoelectric Quantum—Dot Superlattices with High ZT” Journal of Electronic Materials, Jan. 2000, IEEE, vol. 29, No. 1, Jan. 2000, pp. 11-14. |
Asahi H. “Self—Organized Quantum Wires and Dots in III—V Semiconductors” Advanced Materials, vol. 9, No. 13, Nov. 3, 1997, pp. 1019-1026. |
Holy, V. et al. “Strain Induced Vertical and Lateral Correlations in Quantum Dot Superlattices”, Physical Review Letters, vol. 83, No. 2, Jul. 1999, pp. 356-359. |
“Solid-State Superlattices” by Gottfied H. D{umlaut over (o )}hler, Scientific American, V. 249, No. 5, 11/83, pp. 144-151. |
T.E. Whall and E.H.C. Parker, “Preparation of Advanced Materials by Molecular Beam Epitaxy,” in Proc. First Europe Conf. on Thermoelectrics, D.M. Rowe, ed. (Peter Peregrinus Ltd., London 1987) Chapter 5, pp. 51-63. |
Katsuya Oda and Takashi Nakayama, “Effects of Interface Atomic Configurations on Electronic Structures of Semiconductor Superlattices,” Jpn. J. Appl. Phys. 1992, vol. 31, Part 1, No. 8, pp. 2359-2368. |
Kaoru Inoue, et al., “Electron Mobilities in Modulation-Doped A1xGai-xAs/GaAs and Pseudomorphic A1xGai-xAs/InyGai-y As Quantum-Well Structures,” Physical Review B, 1993, vol. 47, No. 7, pp. 3771-3778. |
Mark L. Biermann, et al., “Wave-Packet Theory of Coherent Carrier Dynamics in a Semiconductor Superlattice,” Physical Review B, 1993, vol. 47, No. 7, pp. 3718-3717. |
L.D. Hicks, et al., “Use of Quantum-well Superlattices to Obtain a High Figure of Merit from Non-Conventional Thermoelectric Materials” 1993 Appl. Phys. Lett. vol. 63(23), pp. 3230-3232. |
G.D. Mahan, et al., “Thermoelectric Devices Using Semiconductor Quantum Wells” 1994 J.Appl. Phys. vol. 76 (3), pp. 1899-1901. |
X. Sun, et al., “Quantum Confinement Effects on the Thermoelectric Figure of Merit in Si/Si1-xGe System” 1997 Mat. Res. Soc. Symp. Proc. vol. 478. |
L.D. Hicks, et al., “Experimental Study of the Effect of Quantum-Well Structures on the Thermoelectric Figure of Merit” 1996 Physical Review B, vol. 53, No. 16. |
L.D. Hicks, et al., “Thermoelectric Figure of Merit of a One-Dimensional Conductor” 1993 Physical Review B, Vo. 47, No. 24. |
T.C. Harman, et al. “High Thermoelectric Figures of Merit in PbTe Quantum Wells” 1996 Journal of Electronic Materials, vol. 25, No. 7. |
Farmer, et al., “Sputter Deposition of Multilayer Thermoelectric Films: An Approach to the Fabrication of Two-Dimensional Quantum Wells” 1995, XIII Intl. Conf. on Therm., American Institute of Physics. |
M. S. Dresselhaus, et al., “Prospects for High Thermoelectric Figures of Merit in 2D System,” 1997 Mat. Res. Soc. Symp. Proc. vol. 478. |
L. D. Hicks, et al., “Use of Quantum-Well Superlattices to Increase the Thermoelectric Figure of Merit: Transport and Optical Studies,” 1995 Mat. Res. Soc. Symp. Proc. vol. 358. |
L. D. Hicks, “Effect of Quantum-Well Structures on the Thermoelectric Figure of Merit,” 1993 Physical Review B vol. 47, No. 19. |