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Biblio
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2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
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2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
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1991. Thermoelectric properties of solid solutions of Bi2(Te1-xSex)3 with x=0.05 and x=0.1 grown by T.H.M.. Proceedings of The Tenth International Conference on Thermoelectrics, ICT91. :27-30. Abstract
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2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
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2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2005. Thermoelectric power factor in semiconductors with buried epitaxial semimetallic nanoparticles. Applied Physics Letters. 87:112102-3. Abstract
.
2006. Increased efficiency in multijunction solar cells through the incorporation of semimetallic ErAs nanoparticles into the tunnel junction. Applied Physics Letters. 88:162103-3. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
2006. Thermal Conductivity Reduction and Thermoelectric Figure of Merit Increase by Embedding Nanoparticles in Crystalline Semiconductors. Physical Review Letters. 96:045901-4. Abstract
.
1993. Lecture 8iii: Consumer Applications of Thermoelectric Cooling. SCT-93 Short Course on Thermoelectrics. Download: Buist-Lecture8iii-SCT93.pdf (776.71 KB)
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