The role of acoustic phonon scattering in charge transport in organic semiconductors: a first-principles deformation-potential study

被引:0
作者
Ling Tang
MengQiu Long
Dong Wang
ZhiGang Shuai
机构
[1] Tsinghua University,Department of Chemistry
[2] Chinese Academy of Sciences,Key Laboratory of Organic Solids, Beijing National Laboratory for Molecular Science, Institute of Chemistry
来源
Science in China Series B: Chemistry | 2009年 / 52卷
关键词
mobility; acoustic phonon scattering; Boltzmann equation; organic materials;
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中图分类号
学科分类号
摘要
The electron-acoustic phonon scattering for charge transport in organic semiconductors has been studied by first-principles density functional theory and the Boltzmann transport equation with relaxation time approximation. Within the framework of deformation-potential theory, the electron-longitudinal acoustic phonon scattering probability and the corresponding relaxation time have been obtained for oligoacene single crystals (naphthalene, anthracene, tetracene and pentacene). Previously, the electron-optic phonon scattering mechanism has been investigated through Holstein-Peierls model coupled with DFT calculations for naphthalene. Numerical results indicate that the acoustic phonon scattering intensity is about 3 times as large as that for the optic phonon and the obtained mobility is in much better agreement with the result of the experiment done for ultrapure single crystals. It is thus concluded that for closely packed molecular crystal where the electron is partly delocalized, acoustic phonon scattering mechanism prevails in the charge transport. Moreover, it is found that the intrinsic electron mobility is even larger than hole mobility. A frontier orbital overlap analysis can well rationalize such behavior.
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页码:1646 / 1652
页数:6
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  • [1] Dimitrakopoulos C. D.(2002)Organic thin film transistors for large area electronics Adv Mater 14 99-117
  • [2] Malenfant P. R. L.(2008)Molecular materials for organic field-effect transistors J Phys: Condens Matter 20 184010-87
  • [3] Mori T.(2008)Pentacene-based organic field-effect transistors J Phys: Condens Matter 20 184011-146
  • [4] Kitamura M.(2003)D’Andrade B W, Forrest S R. New charge-carrier blocking materials for high efficiency OLEDs Org Electron 4 77-5
  • [5] Arakawa Y.(2004)A brief history of the development of organic and polymeric photovoltaics Sol Energy Mater & Sol Cells 83 125-918
  • [6] Adamovich V. I.(2007)Organic materials for printed electronics Nat Mater 6 3-657
  • [7] Cordero S. R.(2004)The path to ubiquitous and low-cost organic electronic appliances on plastic Nature 428 911-1331
  • [8] Djurovich P. I.(2003)Charge carrier transport in organic semiconductors Synth Met 133 649-4987
  • [9] Tamayo A.(2004)Organic single-crystal field-effect transistors Phys Status Solidi A 201 1302-952
  • [10] Thompson M. E.(2005)Organic field-effect transistors from solution-deposited functionalized acenes with mobilities as high as 1 cm J Am Chem Soc 127 4986-610