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Weighted Mobility

delete2020-05-14
delete583
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OA
AI
G
G. Jeffrey Snyder *
A
Alemayouh H. Snyder
W
Wood, Maxwell
R
Ramya Gurunathan
B
Berhanu H. Snyder
C
Changning Niu
DOI:10.1002/adma.202001537delete
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摘要

摘要

En 中文
Engineering semiconductor devices requires an understanding of charge carrier mobility. Typically, mobilities are estimated using Hall effect and electrical resistivity meausrements, which are are routinely performed at room temperature and below, in materials with mobilities greater than 1 cm(2) V-1 s(-1). With the availability of combined Seebeck coefficient and electrical resistivity measurement systems, it is now easy to measure the weighted mobility (electron mobility weighted by the density of electronic states). A simple method to calculate the weighted mobility from Seebeck coefficient and electrical resistivity measurements is introduced, which gives good results at room temperature and above, and for mobilities as low as 10(-3) cm(2) V-1 s(-1), mu w=331cm2Vs(m omega cm rho) (T300 K)-3/2[ exp[ |S|kB/e-2]1+exp[-5(|S|kB/e-1) ]+3 pi 2|S|kB/e1+exp[5(|S|kB/e-1) ] ]Here, mu(w) is the weighted mobility, rho is the electrical resistivity measured in m omega cm, T is the absolute temperature in K, S is the Seebeck coefficient, and k(B)/e = 86.3 mu V K-1. Weighted mobility analysis can elucidate the electronic structure and scattering mechanisms in materials and is particularly helpful in understanding and optimizing thermoelectric systems.
Keyword:
electrical transport
electrical measurements
mobility
organic semiconductors
photovoltaics
semiconductors
thermoelectrics
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期刊

Advanced Materials 封面图
Advanced Materials
IF:
26.8
论文数:
3.4W
被引数:
46.0W

机构

N
Northwestern University
学者数:
6.2W
论文数: 5.3W
被引数: 3.9K
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