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231225s2020 xx |||||o 00| ||eng c |
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|a 10.1002/jcc.26145
|2 doi
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|a pubmed24n1017.xml
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|a (NLM)31925957
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|a DE-627
|b ger
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|e rakwb
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|a eng
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|a Zheng, Daoyuan
|e verfasserin
|4 aut
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|a Anisotropic charge carrier transport of optoelectronic functional selenium-containing organic semiconductor materials
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|c 2020
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|a Text
|b txt
|2 rdacontent
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|a ƒaComputermedien
|b c
|2 rdamedia
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|a ƒa Online-Ressource
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|a Date Revised 04.03.2020
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|a published: Print-Electronic
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|a Citation Status PubMed-not-MEDLINE
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|a © 2020 Wiley Periodicals, Inc.
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|a Organic semiconductors (OSCs) materials are currently under intense investigation because of their potential applications such as organic field-effect transistors, organic photovoltaic devices, and organic light-emitting diodes. Inspired by the selenization strategy can promote anisotropic charge carrier migration, and selenium-containing compounds have been proved to be promising materials as OSCs both for hole and electron transfer. Herein, we now explore the anisotropic transport properties of the series of selenium-containing compounds. For the compound containing SeSe bond, the SeSe bond will break when attaching an electron, thus those compounds cannot act as n-type OSCs. About the different isomer compounds with conjugated structure, the charge transfer will be affected by the stacking of the conjugated structures. The analysis of chemical structure and charge transfer property indicates that Se-containing materials are promising high-performance OSCs and might be used as p-type, n-type, or ambipolar OSCs. Furthermore, the symmetry of the selenium-containing OSCs will affect the type of OSCs. In addition, there is no direct relationship between the R groups with their performance, whether it or not as p-type OSCs or n-types. This work demonstrates the relationship between the optoelectronic function and structure of selenium-containing OSCs materials and hence paves the way to design and improve optoelectronic function of OSCs materials
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|a Journal Article
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|a anisotropic mobility
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|a charge carrier
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|a charge transport
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|a organic semiconductors
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|a reorganization energy
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|a selenization strategy
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|a Guo, Yurong
|e verfasserin
|4 aut
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1 |
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|a Zhang, Mingxing
|e verfasserin
|4 aut
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1 |
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|a Feng, Xia
|e verfasserin
|4 aut
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1 |
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|a Zhu, Lina
|e verfasserin
|4 aut
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|a Qiu, Lijuan
|e verfasserin
|4 aut
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|a Jin, Xiaoning
|e verfasserin
|4 aut
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|a Zhao, Guangjiu
|e verfasserin
|4 aut
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|i Enthalten in
|t Journal of computational chemistry
|d 1984
|g 41(2020), 10 vom: 15. Apr., Seite 976-985
|w (DE-627)NLM098138448
|x 1096-987X
|7 nnns
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|g volume:41
|g year:2020
|g number:10
|g day:15
|g month:04
|g pages:976-985
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|u http://dx.doi.org/10.1002/jcc.26145
|3 Volltext
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