Thermoelectrics: From history, a window to the future

被引:421
作者
Beretta, Davide [1 ,2 ]
Neophytou, Neophytos [3 ]
Hodges, James M. [4 ]
Kanatzidis, Mercouri G. [4 ]
Narducci, Dario [5 ]
Martin-Gonzalez, Marisol [6 ]
Beekman, Matt [7 ]
Balke, Benjamin [8 ]
Cerretti, Giacomo [9 ]
Tremel, Wolfgang [10 ]
Zevalkink, Alexandra [11 ]
Hofmann, Anna, I [12 ]
Muller, Christian [12 ]
Dorling, Bernhard [13 ]
Campoy-Quiles, Mariano [13 ]
Caironi, Mario [1 ]
机构
[1] Ist Italiano Tecnol, Ctr Nano Sci & Technol PoliMi, Via Giovanni Pascoli 70-3, I-20133 Milan, Italy
[2] Univ Calif Riverside, Dept Mech Engn, Riverside, CA 92521 USA
[3] Univ Warwick, Sch Engn, Coventry CV4 7AL, W Midlands, England
[4] Northwestern Univ, Chem Dept, Evanston, IL 60208 USA
[5] Univ Milano Bicocca, Dept Mat Sci, Via R Cozzi 55, I-20125 Milan, Italy
[6] IMN CNM CSIC, Inst Micro & Nanotecnol, Madrid 28760, Spain
[7] Calif Polytech State Univ San Luis Obispo, Dept Phys, San Luis Obispo, CA 93407 USA
[8] Univ Stuttgart, Inst Mat Sci, D-70569 Stuttgart, Germany
[9] CALTECH, Jet Prop Lab, Thermal Energy Convers Technol, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
[10] Johannes Gutenberg Univ Mainz, Inst Anorgan Chem & Analyt Chem, Duesbergweg 10-14, D-55099 Mainz, Germany
[11] Michigan State Univ, Chem Engn & Mat Sci Dept, E Lansing, MI 48824 USA
[12] Chalmers Univ Technol, Dept Chem & Chem Engn, S-41296 Gothenburg, Sweden
[13] Inst Mat Sci Barcelona ICMAB CSIC, Campus UAB, Bellaterra 08193, Spain
基金
欧盟地平线“2020”;
关键词
Thermoelectrics; Seebeck; Peltier; Power factor; Electrical conductivity; Thermal conductivity; Materials; Theory; Transport; Complex materials; Nanostructure; History; HALF-HEUSLER COMPOUNDS; HIGHER MANGANESE SILICIDE; SOLID-STATE SYNTHESIS; P-TYPE SKUTTERUDITES; ULTRALOW THERMAL-CONDUCTIVITY; VIII CLATHRATE BA8GA16SN30; FILLED POLYMER COMPOSITES; POWER-FACTOR ENHANCEMENT; QUANTUM-WELL STRUCTURES; HIGH-ELECTRON-MOBILITY;
D O I
10.1016/j.mser.2018.09.001
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Thermoelectricity offers a sustainable path to recover and convert waste heat into readily available electric energy, and has been studied for more than two centuries. From the controversy between Galvani and Volta on the Animal Electricity, dating back to the end of the XVIII century and anticipating Seebeck's observations, the understanding of the physical mechanisms evolved along with the development of the technology. In the XIX century Orsted clarified some of the earliest observations of the thermoelectric phenomenon and proposed the first thermoelectric pile, while it was only after the studies on thermodynamics by Thomson, and Rayleigh's suggestion to exploit the Seebeck effect for power generation, that a diverse set of thermoelectric generators was developed. From such pioneering endeavors, technology evolved from massive, and sometimes unreliable, thermopiles to very reliable devices for sophisticated niche applications in the XX century, when Radioisotope Thermoelectric Generators for space missions and nuclear batteries for cardiac pacemakers were introduced. While some of the materials adopted to realize the first thermoelectric generators are still investigated nowadays, novel concepts and improved understanding of materials growth, processing, and characterization developed during the last 30 years have provided new avenues for the enhancement of the thermoelectric conversion efficiency, for example through nanostructuration, and favored the development of new classes of thermoelectric materials. With increasing demand for sustainable energy conversion technologies, the latter aspect has become crucial for developing thermoelectrics based on abundant and non-toxic materials, which can be processed at economically viable scales, tailored for different ranges of temperature. This includes high temperature applications where a substantial amount of waste energy can be retrieved, as well as room temperature applications where small and local temperature differences offer the possibility of energy scavenging, as in micro harvesters meant for distributed electronics such as sensor networks. While large scale applications have yet to make it to the market, the richness of available and emerging thermoelectric technologies presents a scenario where thermoelectrics is poised to contribute to a future of sustainable future energy harvesting and management. This work reviews the broad field of thermoelectrics. Progress in thermoelectrics and milestones that led to the current state-of-the-art are presented by adopting an historical footprint. The review begins with an historical excursus on the major steps in the history of thermoelectrics, from the very early discovery to present technology. Then, the most promising thermoelectric material classes are discussed one by one in dedicated sections and subsections, carefully highlighting the technological solutions on materials growth that have represented a turning point in the research on thermoelectrics. Finally, perspectives and the future of the technology are discussed in the framework of sustainability and environmental compatibility. An appendix on the theory of thermoelectric transport in the solid state reviews the transport theory in complex crystal structures and nanostructured materials.
引用
收藏
页码:210 / 255
页数:46
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