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Determining conductivity and mobility values of individual components in multiphase composite Cu_(1.97)Ag_(0.03)Se

机译:测定多相复合Cu_(1.97)Ag_(0.03)Se中各个成分的电导率和迁移率值

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摘要

The intense interest in phase segregation in thermoelectrics as a means to reduce the lattice thermal conductivity and to modify the electronic properties from nanoscale size effects has not been met with a method for separately measuring the properties of each phase assuming a classical mixture. Here, we apply effective medium theory for measurements of the in-line and Hall resistivity of a multiphase composite, in this case Cu_(1.97) Ag_(0.03)Se. The behavior of these properties with magnetic field as analyzed by effective medium theory allows us to separate the conductivity and charge carrier mobility of each phase. This powerful technique can be used to determine the matrix properties in the presence of an unwanted impurity phase, to control each phase in an engineered composite, and to determine the maximum carrier concentration change by a given dopant, making it the first step toward a full optimization of a multiphase thermoelectric material and distinguishing nanoscale effects from those of a classical mixture.
机译:在假设经典混合物的情况下,用一种单独测量各相特性的方法无法满足热电学中相分离的浓厚兴趣,因为相分离是降低晶格导热率和从纳米尺寸效应改变电子性能的一种方法。在这里,我们将有效介质理论应用于多相复合材料(在这种情况下为Cu_(1.97)Ag_(0.03)Se)的在线和霍尔电阻率的测量。通过有效介质理论分析,这些性质与磁场的行为使我们能够分离出每个相的电导率和电荷载流子迁移率。这项强大的技术可用于在存在不想要的杂质相的情况下确定基体性质,控制工程复合材料中的每个相,并确定给定掺杂剂的最大载流子浓度变化,这是迈向全掺杂的第一步优化多相热电材料并将纳米级效应与传统混合物区分开来。

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