Avoided crossing of rattler modes in thermoelectric materials

被引:0
|
作者
Mogens Christensen
Asger B. Abrahamsen
Niels B. Christensen
Fanni Juranyi
Niels H. Andersen
Kim Lefmann
Jakob Andreasson
Christian R. H. Bahl
Bo B. Iversen
机构
[1] Center for Energy Materials,Department of Chemistry and Interdisciplinary Nanoscience Center iNANO
[2] University of Aarhus,Materials Research Department
[3] Risø National Laboratory for Sustainable Energy,Department of Applied Physics
[4] Technical University of Denmark,undefined
[5] Laboratory for Neutron Scattering,undefined
[6] ETHZ and PSI,undefined
[7] Nano-Science Center,undefined
[8] Niels Bohr Institute,undefined
[9] University of Copenhagen,undefined
[10] Chalmers University of Technology,undefined
来源
Nature Materials | 2008年 / 7卷
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摘要
Engineering of materials with specific physical properties has recently focused on the effect of nano-sized ‘guest domains’ in a ‘host matrix’ that enable tuning of electrical, mechanical, photo-optical or thermal properties. A low thermal conductivity is a prerequisite for obtaining effective thermoelectric materials, and the challenge is to limit the conduction of heat by phonons, without simultaneously reducing the charge transport. This is named the ‘phonon glass–electron crystal’ concept and may be realized in host–guest systems. The guest entities are believed to have independent oscillations, so-called rattler modes, which scatter the acoustic phonons and reduce the thermal conductivity. We have investigated the phonon dispersion relation in the phonon glass–electron crystal material Ba8Ga16Ge30 using neutron triple-axis spectroscopy. The results disclose unambiguously the theoretically predicted avoided crossing of the rattler modes and the acoustic-phonon branches. The observed phonon lifetimes are longer than expected, and a new explanation for the low κL is provided.
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页码:811 / 815
页数:4
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