| Literature DB >> 23603851 |
S Ishiwata1, Y Shiomi, J S Lee, M S Bahramy, T Suzuki, M Uchida, R Arita, Y Taguchi, Y Tokura.
Abstract
The electron mobility is one of the key parameters that characterize the charge-carrier transport properties of materials, as exemplified by the quantum Hall effect as well as high-efficiency thermoelectric and solar energy conversions. For thermoelectric applications, introduction of chemical disorder is an important strategy for reducing the phonon-mediated thermal conduction, but is usually accompanied by mobility degradation. Here, we show a multilayered semimetal β-CuAgSe overcoming such a trade-off between disorder and mobility. The polycrystalline ingot shows a giant positive magnetoresistance and Shubnikov de Haas oscillations, indicative of a high-mobility small electron pocket derived from the Ag s-electron band. Ni doping, which introduces chemical and lattice disorder, further enhances the electron mobility up to 90,000 cm(2) V(-1) s(-1) at 10 K, leading not only to a larger magnetoresistance but also a better thermoelectric figure of merit. This Ag-based layered semimetal with a glassy lattice is a new type of promising thermoelectric material suitable for chemical engineering.Entities:
Year: 2013 PMID: 23603851 DOI: 10.1038/nmat3621
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841