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Solution-based synthesis and processing of Sn- and Bi-doped Cu3SbSe4 nanocrystals, nanomaterials and ring-shaped thermoelectric generators

机译:基于溶液的合成和处理sn和Bi掺杂的Cu3sbse4纳米晶体,纳米材料和环形热电发生器

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摘要

Copper-based chalcogenides that comprise abundant, low-cost, and environmental friendly elements are excellent materials for a number of energy conversion applications, including photovoltaics, photocatalysis, and thermoelectrics (TE). In such applications, the use of solution-processed nanocrystal (NC) to produce thin films or bulk nanomaterials has associated several potential advantages, such as high material yield and throughput, and composition control with unmatched spatial resolution and cost. Here we report on the production of Cu3SbSe4 (CASe) NCs with tuned amounts of Sn and Bi dopants. After proper ligand removal, as monitored by nuclear magnetic resonance and infrared spectroscopies, these NCs were used to produce dense CASe bulk nanomaterials for solid state TE energy conversion. By adjusting the amount of extrinsic dopants, dimensionless TE figures of merit (ZT) up to 1.26 at 673 K were reached. Such high ZT values are related to an optimized carrier concentration by Sn doping, a minimized lattice thermal conductivity due to efficient phonon scattering at point defects and grain boundaries, and to an increase of the Seebeck coefficient obtained by a modification of the electronic band structure with the Bi doping. Nanomaterials were further employed to fabricate ring-shaped TE generators to be coupled to hot pipes and which provided 20 mV and 1 mW per TE element when exposed to a 160 °C temperature gradient. The simple design and good thermal contact associated with the ring geometry and the potential low cost of the material solution processing may allow the fabrication of TE generators with short payback times.
机译:包含大量,低成本和环境友好元素的铜基硫属化物是用于许多能量转换应用(包括光伏,光催化和热电(TE))的出色材料。在这样的应用中,使用溶液处理的纳米晶体(NC)来生产薄膜或块状纳米材料具有多种潜在的优势,例如高材料产量和高产量,以及具有无与伦比的空间分辨率和成本的成分控制。在这里,我们报告了具有调整数量的Sn和Bi掺杂剂的Cu3SbSe4(CASe)NC的生产。在通过核磁共振和红外光谱法监测到适当的配体去除后,这些NC被用于生产致密的CASe块状纳米材料,以进行固态TE能量转换。通过调整外部掺杂剂的量,在673 K时达到1.26的无量纲TE品质因数(ZT)。如此高的ZT值与通过Sn掺杂实现的最佳载流子浓度,由于在点缺陷和晶界处有效声子散射而导致的晶格导热率最小以及通过修改电子能带结构获得的塞贝克系数的增加有关Bi掺杂。纳米材料还被用来制造环形TE发生器,以与热管耦合,当暴露于160°C的温度梯度时,每个TE元件可提供20 mV和1 mW的能量。与环的几何形状相关联的简单设计和良好的热接触以及材料溶液处理的潜在低成本可以允许以短的投资回收期来制造TE发电机。

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