Gerald Mahan et al., “Thermoelectric Material: New Approaches to an Old Problem,” Physics Today, Mar. 1997, pp. 42-47. |
“Appendix 2: The Present State of Thermoelectrics Research in Skutterudites: NAS9-19358, Task 1.3” Marlow Industries, Inc., Feb. 28, 1997, pp. 25-44. |
George S. Nolas et al., “New Materials for Thermoelectric Cooling Based on IrSb3” 14th International Conference on Thermoelectrics, St. Petersburg, Jun. 1995, 4 pages. |
Terry M. Tritt et al., “Low Temperature Transport Properties of IrSb3” 14th International Conference on Thermoelectrics, St. Petersburg, Jun. 1995, 5 pages. |
G. S. Nolas et al., “Raman scattering study of antimony-based skutterudites” Journal of Applied Physics, vol. 79, No. 5, Mar. 1, 1996, pp. 2622-2626. |
Terry M. Tritt et al., “Low-temperature transport properties of the filled and unfilled IrSb3 skutterudite system” Journal of Applied Physics, vol. 79, No. 11, Jun. 1, 1996, pp. 8412-8418. |
G. S. Nolas et al, “The effect of rare-earth filling on the lattice thermal conductivity of skutterudites” Journal of Applied Physics, vol. 79, No. 8, Apr. 15, 1996, pp. 4002-4008. |
G. S. Nolas et al, “Low-temperature transport properties of the mixed-valence semiconductor RU0.5Pd0.5Sb3” Journal of Applied Physics, vol. 80, No. 11, Dec. 1, 1996, pp. 6304-6308. |
T. Caillat et al., “Properties of single crystalline semiconducting CoSb3” Journal of Applied Physics, vol. 80, No. 8, Oct. 15, 1996, pp. 4442-4449. |
Th. Schmidt et al. “Structure Refinement of Skutterudite-Type Cobalt Triantimonide, CoSb3” Acta Cryst.(1987). C43, pp. 1678-1679 No month available. |
Marc D. Hornbostel et al., “Systematic Study of New Rare Earth Element—Iron-Anitmony Skutterudites Synthesized Using Multilayer Precursors” Inorganic Chemistry, vol. 36, No. 19, 1997, pp. 4270-4274 No month available. |
Joseph Callaway et al., “Effect of Point Imperfections on Lattice Thermal Conductivity” Physical Review, vol. 120, No. 4, Nov. 15, 1960, pp. 1149-1154. |
Joseph Callaway, “Model for Lattice Thermal Conductivity at Low Temperatures” Physical Review, vol. 113, No. 4, Feb. 15, 1959, pp. 1046-1051. |
B. Abeles, “Lattice Thermal Conductivity of Disordered Semiconductor Alloys at High Temperatures” Physical Review, vol. 131, No. 5, Sep. 1, 1963. |
R. D. Shannon et al., “Effective Ionic Radii on Oxides and Fluorides” Acta Cryst. (1969). B25, 925-46 No month available. |
Glen A. Slack, “The Thermal Conductivity of Nonmetallic Crystals” Solid State Physics, vol. 34, 1979, pp. 1-70 No month available. |
The Department of Defense FY 1997 Small Business Innovation Research (SBIR) Program, A97-11: “Novel Materials/Materials Structures Development for Thermoelectric Device Applications”, p. 33 No month available. |
U.S. Department of Energy, Advanced Energy Projects FY 1996 Research Summaries, “Off-Diagonal′Thermoelectricity for Cooling and Power Generation” by TecOne, pp. 30-31 Sep. 1996. |
Singh, et al., “Properties of Novel Thermoelectrics From First Principles Calculations,” Materials Research Society Symposium Procedures, vol. 545, pp. 3-11, presented Nov. 30-Dec. 4. 1998; published Spring 1999. |
Sales, et al., “Filled Skutterudite Antimonides: A New Class of Thermoelectric Materials,” Science, vol. 272, pp. 1325-1328, American Association for the Advancement of Science, May 31, 1996. |
Fornari, et al., “Electronic structure and thermoelectric prospects of phosphide skutterudites,” Physical Review B, vol. 59, No. 15, pp. 9722-9724, Apr. 15, 1999. |
Fornari et al., “Prediction of room-temperature high-thermoelectric performance in n-type La(RU1-XRhX)4Sb12, ” Applied Physics Letters, vol. 74, No. 24. pp. 3666-3668, Jun. 14, 1999. |