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纳米尺度的分子光伏

Molecular photovoltaics in nanoscale dimension.

作者信息

Burtman Vladimir, Zelichonok Alexander, Pakoulev Andrei V

机构信息

Department of Geology and Geophysics, University of Utah, 115 South 1460 East, Room 383, Salt Lake City, UT 84112, USA.

出版信息

Int J Mol Sci. 2011 Jan 5;12(1):173-225. doi: 10.3390/ijms12010173.

Abstract

This review focuses on the intrinsic charge transport in organic photovoltaic (PVC) devices and field-effect transistors (SAM-OFETs) fabricated by vapor phase molecular self-assembly (VP-SAM) method. The dynamics of charge transport are determined and used to clarify a transport mechanism. The 1,4,5,8-naphthalene-tetracarboxylic diphenylimide (NTCDI) SAM devices provide a useful tool to study the fundamentals of polaronic transport at organic surfaces and to discuss the performance of organic photovoltaic devices in nanoscale. Time-resolved photovoltaic studies allow us to separate the charge annihilation kinetics in the conductive NTCDI channel from the overall charge kinetic in a SAM-OFET device. It has been demonstrated that tuning of the type of conductivity in NTCDI SAM-OFET devices is possible by changing Si substrate doping. Our study of the polaron charge transfer in organic materials proposes that a cation-radical exchange (redox) mechanism is the major transport mechanism in the studied SAM-PVC devices. The role and contribution of the transport through delocalized states of redox active surface molecular aggregates of NTCDI are exposed and investigated. This example of technological development is used to highlight the significance of future technological development of nanotechnologies and to appreciate a structure-property paradigm in organic nanostructures.

摘要

本综述聚焦于通过气相分子自组装(VP - SAM)方法制备的有机光伏(PVC)器件和场效应晶体管(SAM - OFET)中的本征电荷传输。确定了电荷传输的动力学,并用于阐明传输机制。1,4,5,8 - 萘四羧酸二苯酰亚胺(NTCDI)自组装单分子层器件为研究有机表面极化子传输的基本原理以及讨论纳米尺度下有机光伏器件的性能提供了一个有用的工具。时间分辨光伏研究使我们能够将导电NTCDI通道中的电荷湮灭动力学与SAM - OFET器件中的整体电荷动力学区分开来。已经证明,通过改变硅衬底掺杂,可以调节NTCDI SAM - OFET器件中的导电类型。我们对有机材料中极化子电荷转移的研究表明,阳离子 - 自由基交换(氧化还原)机制是所研究的SAM - PVC器件中的主要传输机制。揭示并研究了通过NTCDI氧化还原活性表面分子聚集体的离域态进行传输的作用和贡献。这个技术发展的例子用于突出纳米技术未来技术发展的重要性,并理解有机纳米结构中的结构 - 性质范式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2bcb/3039949/d1fe1935f71c/ijms-12-00173f1.jpg

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