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Recent trends in thermoelectric materials research II /

Since its inception in 1966, the series of numbered volumes known as Semiconductors and Semimetals has distinguished itself through the careful selection of well-known authors, editors, and contributors. The Willardson and Beer series, as it is widely known, has succeeded in producing numerous landm...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Otros Autores: Tritt, Terry M.
Formato: Electrónico eBook
Idioma:Inglés
Publicado: San Diego : Academic Press, �2001.
Colección:Semiconductors and semimetals ; v. 70.
Temas:
Acceso en línea:Texto completo

MARC

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245 0 0 |a Recent trends in thermoelectric materials research II /  |c volume editor, Terry M. Tritt. 
260 |a San Diego :  |b Academic Press,  |c �2001. 
300 |a 1 online resource (xvi, 299 pages) :  |b illustrations. 
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490 1 |a Semiconductors and semimetals ;  |v v. 70 
504 |a Includes bibliographical references and index. 
588 0 |a Print version record. 
520 |a Since its inception in 1966, the series of numbered volumes known as Semiconductors and Semimetals has distinguished itself through the careful selection of well-known authors, editors, and contributors. The Willardson and Beer series, as it is widely known, has succeeded in producing numerous landmark volumes and chapters. Not only did many of these volumes make an impact at the time of their publication, but they continue to be well-cited years after their original release. Recently, Professor Eicke R. Weber of the University of California at Berkeley joined as a co-editor of the series. Professor Weber, a well-known expert in the field of semiconductor materials, will further contribute to continuing the series' tradition of publishing timely, highly relevant, and long-impacting volumes. Some of the recent volumes, such as Hydrogen in Semiconductors, Imperfections in III/V Materials, Epitaxial Microstructures, High-Speed Heterostructure Devices, Oxygen in Silicon, and others promise that this tradition will be maintained and even expanded. Thermoelectric materials may be used for solid state refrigeration or power generation applications via the large Peltier effect in these materials. To be an effective thermoelectric material, a material must possess a large Seebeck coefficient, a low resistivity and a low thermal conductivity. Due to increased need for alternative energy sources providing environmentally friendly refrigeration and power generation, thermoelectric materials research experienced a rebirth in the mid 1990's. Semiconductors and Semimetals, Volume 70: Recent Trends in Thermoelectric Materials Research: Part Two provides an overview of much of this research in thermoelectric materials during the decade of the 1990's. New materials and new material concepts such as quantum well and superlattice structures gave hope to the possibilities that might be achieved. An effort was made to focus on these new materials and not on materials such as BiTe alloys, since such recent reviews are available. Experts in the field who were active researchers during this period were the primary authors to this series of review articles. This is the most complete collection of review articles that are primarily focussed on new materials and new concepts that is existence to date. 
505 0 |a Front Cover; Recent Trends in Thermoelectric Materials Research II; Copyright Page; Contents; Preface; List of Contributors; Chapter 1. Use of Atomic Diplacement Parameters in Thermoelectric Materials Research ; I. Introduction ; II. Elementary Theory of Atomic Displacement Parameters ; III. Interpreting ADP Data. 
505 8 |a IV. Clathratelike Thermoelectric Compounds V. Estimation of the Lattice Thermal Conductivity from ADP Data ; VI. Examples ; VII. Summary ; References ; Chapter 2. Electronic and Thermoelectric Properties of Half-Heusler Alloys ; I. Introduction ; II. Experimental Procedures. 
505 8 |a III. Undoped Compounds with Valence Electron Count Near 18 IV. Doped Alloys ; V. Summary ; References ; Chapter 3. Overview of the Thermoelectric Properties of Quasicrystalline Materials and Their Potential for Thermoelectric Applications; I. Quasicrystals: Background and Introduction; II. Quasicrystals: Structural and Mechanical Properties; III. Synthetic Methods for the Growth of Quasicrystals. 
505 8 |a IV. Introduction to Thermoelectric Materials V. Quasicrystals as Thermoelectrics?; VI. Thermoelectric Properties of Quasicrystals ; VII. Future Directions and Approach ; VIII. Summary ; References ; Chapter 4. Military Applications of Enhanced Thermoelectrics ; I. Introduction ; II. Thermal Management. 
505 8 |a III. Power Generation IV. Conclusion ; Chapter 5. Theoretical and Computational Approaches for Identifying and Optimizing Novel hermoelectric Materials ; I. Introduction ; II. Some Fundamental Considerations ; III. First Principles Methodology ; IV. Skutterudites ; V. Chevrel Phases. 
546 |a English. 
650 0 |a Thermoelectric materials. 
650 0 |a Semiconductors. 
650 6 |a Thermo�electricit�e  |x Mat�eriaux.  |0 (CaQQLa)201-0248369 
650 6 |a Semi-conducteurs.  |0 (CaQQLa)201-0318258 
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650 7 |a Thermoelectric materials  |2 fast  |0 (OCoLC)fst01149864 
700 1 |a Tritt, Terry M. 
776 0 8 |i Print version:  |t Recent trends in thermoelectric materials research II.  |d San Diego : Academic Press, �2001  |z 0127521798  |z 9780127521794  |w (OCoLC)45255973 
830 0 |a Semiconductors and semimetals ;  |v v. 70. 
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