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本文引用的文献

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Photogenerated Intrinsic Free Carriers in Small-molecule Organic Semiconductors Visualized by Ultrafast Spectroscopy.通过超快光谱可视化小分子有机半导体中的光生本征自由载流子。
Sci Rep. 2015 Nov 27;5:17076. doi: 10.1038/srep17076.
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Direct Observation of Entropy-Driven Electron-Hole Pair Separation at an Organic Semiconductor Interface.有机半导体界面处熵驱动的电子-空穴对分离的直接观测
Phys Rev Lett. 2015 Jun 19;114(24):247003. doi: 10.1103/PhysRevLett.114.247003. Epub 2015 Jun 16.
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Hot photocarrier dynamics in organic solar cells.有机太阳能电池中的热光生载流子动力学。
Nat Commun. 2015 Jul 16;6:7558. doi: 10.1038/ncomms8558.
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Single-junction polymer solar cells exceeding 10% power conversion efficiency.单结聚合物太阳能电池的光电转换效率超过 10%。
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Electrically continuous graphene from single crystal copper verified by terahertz conductance spectroscopy and micro four-point probe.太赫兹电导光谱和微四点探针法验证单晶铜中电连续的石墨烯
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8.4% efficient fullerene-free organic solar cells exploiting long-range exciton energy transfer.利用长程激子能量转移实现 8.4%效率的无富勒烯有机太阳能电池。
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Delocalization and dielectric screening of charge transfer states in organic photovoltaic cells.有机光伏电池中电荷转移态的离域和介电屏蔽。
Nat Commun. 2014;5:3245. doi: 10.1038/ncomms4245.
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Solution-processed small-molecule solar cells: breaking the 10% power conversion efficiency.溶液处理的小分子太阳能电池:突破10%的功率转换效率。
Sci Rep. 2013 Nov 28;3:3356. doi: 10.1038/srep03356.
9
Efficient charge generation by relaxed charge-transfer states at organic interfaces.通过有机界面处松弛的电荷转移态进行有效的电荷产生。
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10
Broadband ultrafast photoluminescence spectroscopy resolves charge photogeneration via delocalized hot excitons in polymer:fullerene photovoltaic blends.宽带超快光致发光光谱学通过聚合物:富勒烯光伏混合物中的离域热激子来解析电荷光生成。
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利用太赫兹光谱探测有机太阳能电池中的电荷转移和热载流子动力学

Probing Charge Transfer and Hot Carrier Dynamics in Organic Solar Cells with Terahertz Spectroscopy.

作者信息

Cunningham Paul D, Lane Paul A, Melinger Joseph S, Esenturk Okan, Heilweil Edwin J

机构信息

U.S. Naval Research Laboratory, Washington, DC 20375, United States.

Chemistry Department, Middle East Technical University, Ankara, Turkey.

出版信息

Proc SPIE Int Soc Opt Eng. 2016;9856. doi: 10.1117/12.2228379. Epub 2016 May 10.

DOI:10.1117/12.2228379
PMID:28649166
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5482377/
Abstract

Time-resolved terahertz spectroscopy (TRTS) was used to explore charge generation, transfer, and the role of hot carriers in organic solar cell materials. Two model molecular photovoltaic systems were investigated: with zinc phthalocyanine (ZnPc) or alpha-sexathiophene (α-6T) as the electron donors and buckminsterfullerene (C) as the electron acceptor. TRTS provides charge carrier conductivity dynamics comprised of changes in both population and mobility. By using time-resolved optical spectroscopy in conjunction with TRTS, these two contributions can be disentangled. The sub-picosecond photo-induced conductivity decay dynamics of C were revealed to be caused by auto-ionization: the intrinsic process by which charge is generated in molecular solids. In donor-acceptor blends, the long-lived photo-induced conductivity is used for weight fraction optimization of the constituents. In nanoscale multilayer films, the photo-induced conductivity identifies optimal layer thicknesses. In films of ZnPc/C, electron transfer from ZnPc yields hot charges that localize and become less mobile as they thermalize. Excitation of high-lying Franck Condon states in C followed by hole-transfer to ZnPc similarly produces hot charge carriers that self-localize; charge transfer clearly precedes carrier cooling. This picture is contrasted to charge transfer in α-6T/C, where hole transfer takes place from a thermalized state and produces equilibrium carriers that do not show characteristic signs of cooling and self-localization. These results illustrate the value of terahertz spectroscopic methods for probing charge transfer reactions.

摘要

时间分辨太赫兹光谱(TRTS)被用于研究有机太阳能电池材料中的电荷产生、转移以及热载流子的作用。研究了两个模型分子光伏系统:以锌酞菁(ZnPc)或α-六噻吩(α-6T)作为电子供体,以巴基球(C)作为电子受体。TRTS提供了由载流子数量和迁移率变化组成的电荷载流子电导率动力学。通过将时间分辨光谱与TRTS结合使用,可以区分这两种贡献。结果表明,C的亚皮秒光致电导率衰减动力学是由自电离引起的:这是分子固体中产生电荷的固有过程。在供体-受体共混物中,长寿命光致电导率用于优化组分的重量分数。在纳米级多层膜中,光致电导率可确定最佳层厚度。在ZnPc/C薄膜中,来自ZnPc的电子转移产生热电荷,这些热电荷在热化时会局部化并变得移动性降低。C中高能弗兰克-康登态的激发随后空穴转移到ZnPc同样会产生自局部化的热电荷载流子;电荷转移明显先于载流子冷却。这一情况与α-6T/C中的电荷转移形成对比,在α-6T/C中,空穴转移发生在热化状态,产生的平衡载流子没有显示出冷却和自局部化的特征迹象。这些结果说明了太赫兹光谱方法在探测电荷转移反应方面的价值。