| Literature DB >> 30735348 |
Min Ho Lee1,2, Jae Hyun Yun1, Gareoung Kim1, Ji Eun Lee3, Su-Dong Park3, Heiko Reith2, Gabi Schierning2, Konelius Nielsch2, Wonhee Ko4, An-Ping Li4, Jong-Soo Rhyee1.
Abstract
Considerable efforts have been devoted to enhancing thermoelectric performance, by employing phonon scattering from nanostructural architecture, and material design using phonon-glass and electron-crystal concepts. The nanostructural approach helps to lower thermal conductivity but has limited effect on the power factor. Here, we demonstrate selective charge Anderson localization as a route to maximize the Seebeck coefficient while simultaneously preserving high electrical conductivity and lowering the lattice thermal conductivity. We confirm the viability of interface potential modification in an n-type Bi-doped PbTe/Ag2Te nanocomposite and the resulting enhancement in thermoelectric figure-of-merit ZT. The introduction of random potentials via Ag2Te nanoparticle distribution using extrinsic phase mixing was determined using scanning tunneling spectroscopy measurements. When the Ag2Te undergoes a structural phase transition ( T > 420 K) from monoclinic β-Ag2Te to cubic α-Ag2Te, the band gap in the α-Ag2Te increases due to the p -d hybridization. This results in a decrease in the potential barrier height, which gives rise to partial delocalization of the electrons, while wave packets of the holes are still in a localized state. Using this strategic approach, we achieved an exceptionally high thermoelectric figure-of-merit in n-type PbTe materials, a ZT greater than 2.0, suitable for waste heat power generation.Entities:
Keywords: Anderson localization; bulk composite; figure-of-merit; thermal conductivity; thermoelectric
Year: 2019 PMID: 30735348 DOI: 10.1021/acsnano.8b08579
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881