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首页> 外文期刊>ACS nano >Synergetic Enhancement of Thermoelectric Performance by Selective Charge Anderson Localization-Delocalization Transition in n-Type Bi-Doped PbTe/Ag2Te Nanocomposite
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Synergetic Enhancement of Thermoelectric Performance by Selective Charge Anderson Localization-Delocalization Transition in n-Type Bi-Doped PbTe/Ag2Te Nanocomposite

机译:通过选择性充电Anderson局部化 - 纳米复合材料选择性充电和官能局部化 - 中间化转变的协同增强热电性能

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摘要

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 beta-Ag2Te to cubic alpha-Ag2Te, the band gap in the alpha-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.
机译:通过采用从纳米结构架构的散射和使用子玻璃和电子晶体概念的材料设计来提高热电性能,致力于提高热电性能。纳米结构方法有助于降低导热性,但对功率因数有有限的影响。这里,我们证明了选择性充电Anderson定位作为最大化塞贝克系数的途径,同时保持高导电性并降低晶格导热率。我们在N型双掺杂PBTE / AG2TE纳米复合材料中证实了界面电位改性的可行性以及METLITIT ZT的热电数字中得到的增强。使用扫描隧道光谱测量测定使用外列相混合的Ag2Te纳米粒子分布引入随机电位。当Ag2Te经历从单斜型β-Ag2Te至立方α-Ag2Te的结构相转变(T> 420 k)时,由于P-D杂交,α-Ag2Te中的带隙增加。这导致潜在的屏障高度的降低,这导致电子的部分删除化,而孔的波浪包仍处于局部状态。使用这种战略方法,我们在N型PBTE材料中实现了一个特别高的热电数字,ZT大于2.0,适用于废热发电。

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