首页> 外文期刊>Advances in Materials Physics and Chemistry >Structure and Thermoelectric Properties of Nanostructured (Bi, Sb)2Te3 (Review)
【24h】

Structure and Thermoelectric Properties of Nanostructured (Bi, Sb)2Te3 (Review)

机译:纳米结构化(Bi,Sb)2Te3的结构和热电性能(综述)

获取原文
       

摘要

The investigation of the structure and thermoelectric properties of nanostructured solid solutions (Bi, Sb)2Te3 p-type has been carried out. The samples were obtained by grinding of original compositions in a planetary ball mill and by spark plasma sintering (SPS). Initial powder has an average particle size of 10 - 12 nm according to transmission electron microscopy, and the size of the coherent scattering region (CSR) obtained by X-ray line broadening. During sintering at Ts = 250°C - 400°C, the grain size and CSR increased, which was associated with the processes of recrystallization. The maximum of size distribution of CSR shifts to larger sizes when Ts increases so that no broadening of X-ray lines at Ts = 400°C can take place. At higher Ts, the emergence of new nanograins is observed. The formation of nanograins is conditioned by reducing of quantity of the intrinsic point defects produced in the grinding of the source materials. The study of the electrical conductivity and the Hall effect in a single crystal allows to estimate the mean free path of the holes-L in the single crystal Bi0.5Sb1.5Te3 which at room temperature is 2 - 5 nm (it is much smaller than the dimensions of CSR in the samples). The method for evaluation of L in polycrystalline samples is proposed. At room temperature, L is close to the mean free path in single crystals. Scattering parameter holes in SPS samples obtained from the temperature dependence of the Seebeck coefficient are within the measurement error equal to the parameter of the scattering of holes in a single crystal. The figure of merit ZT of SPS samples as a function of composition and sintering temperature has been investigated. Maximum ZT, equal to 1.05 at room temperature, is obtained for the composition Bi0.4Sb1.6Te3 at Ts = 500°C and a pressure of 50 MPa. The causes of an apparent increase in thermoelectric efficiency are discussed.
机译:进行了纳米结构固溶体(Bi,Sb)2Te3 p型的结构和热电性能的研究。通过在行星式球磨机中研磨原始成分并通过火花等离子体烧结(SPS)获得样品。根据透射电子显微镜,初始粉末的平均粒径为10-12nm,并且通过X射线线加宽获得的相干散射区(CSR)的尺寸。在Ts = 250°C-400°C的烧结过程中,晶粒尺寸和CSR增大,这与重结晶过程有关。当Ts增加时,CSR的最大尺寸分布移到更大的尺寸,从而在Ts = 400℃下不会发生X射线线的展宽。在较高的Ts下,观察到新的纳米颗粒的出现。纳米颗粒的形成是通过减少源材料研磨中产生的本征点缺陷的数量来调节的。对单晶中电导率和霍尔效应的研究使得可以估计Bi0.5Sb1.5Te3单晶中空穴L的平均自由程,Bi0.5Sb1.5Te3在室温下为2-5 nm(比样品中CSR的尺寸)。提出了评价多晶样品中L的方法。在室温下,L接近单晶的平均自由程。根据塞贝克系数的温度依赖性获得的SPS样品中的散射参数孔在测量误差内,该误差等于单晶中孔的散射参数。研究了SPS样品的优值ZT与成分和烧结温度的关系。在Ts = 500℃和压力为50 MPa的条件下,Bi0.4Sb1.6Te3组合物在室温下的最大ZT等于1.05。讨论了热电效率明显增加的原因。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号