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Accurate Measurements and Error Analysis of Bi_(2)Te_(3)-Based Low-Temperature Thermoelectrics
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作者 Jie Zhang Yixuan Ge +9 位作者 Minhua Huang Xiaohan Qin Chao Xin linhan wang Wenfeng Du Tianbo Lu Huaizhou Zhao Wenjie Liang Yongjun Cao Guodong Li 《Chinese Physics Letters》 2025年第5期100-116,共17页
The accurate characterization of thermoelectric properties at low temperatures is crucial for the development of high-performance thermoelectric cooling devices. While measurement errors of thermoelectric properties a... The accurate characterization of thermoelectric properties at low temperatures is crucial for the development of high-performance thermoelectric cooling devices. While measurement errors of thermoelectric properties at temperatures above room temperature have been extensively discussed, there is a lack of standard measurement protocols and error analyses for low-temperature transport properties. In this study, we present a measurement system capable of characterizing all three key thermoelectric parameters, i.e., Seebeck coefficient, electrical conductivity, and thermal conductivity, for a single sample across a temperature range of 10 K to 300 K. We investigated six representative commercial Bi_(2)Te_(3)-based samples(three N-type and three P-type). Using an error propagation model, we systematically analyzed the measurement uncertainties of the three intrinsic parameters and the resulting thermoelectric figure of merit. Our findings reveal that measurement uncertainties for both N-type and P-type Bi_(2)Te_(3)-based materials can be effectively maintained below 5% in the temperature range of 40 K to 300 K. However, the uncertainties increase to over 10% at lower temperatures, primarily due to the relatively smaller values of electrical resistivity and Seebeck coefficients in this regime. This work establishes foundational data for Bi_(2)Te_(3)-based thermoelectric materials and provides a framework for broader investigations of advanced low-temperature thermoelectrics. 展开更多
关键词 measurement system thermoelectric parameters low temperature measurements thermoelectric properties thermoelectric cooling devices error analyses standard measurement protocols characterization thermoelectric properties
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A minimally invasive,fast on/off"odorgenetic"method to manipulate physiology
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作者 Yanqiong Wu Xueqin Xu +16 位作者 Shanchun Su Zeyong Yang Xincai Hao Wei Lu Jianghong He Juntao Hu Xiaohui Li Hong Yu Xiuqin Yu Yangqiao Xiao Shuangshuang Lu linhan wang Wei Tian Hongbing Xiang Gang Cao Wen Jun Tu Changbin Ke 《Protein & Cell》 2025年第7期615-620,共6页
Dear Editor,Developing a rapid,controllable method for manipulat-ing physiological functions has significant potential for clinical therapeutics and basic research.Optogenetics has provided optical control of neuronal... Dear Editor,Developing a rapid,controllable method for manipulat-ing physiological functions has significant potential for clinical therapeutics and basic research.Optogenetics has provided optical control of neuronal activity at the millisecond time scale(Bernstein and Boyden,2011;Carter et al.,2010;Madisen et al.,2012). 展开更多
关键词 basic researchoptogenetics basic research OPTOGENETICS physiological functions optical control neuronal activity clinical therapeutics rapid control minimally invasive
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