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热无序和结构无序对混合钙钛矿半导体CH3NH3PbI3电子结构的影响。

Effect of Thermal and Structural Disorder on the Electronic Structure of Hybrid Perovskite Semiconductor CH3NH3PbI3.

作者信息

Singh Shivam, Li Cheng, Panzer Fabian, Narasimhan K L, Graeser Anna, Gujar Tanaji P, Köhler Anna, Thelakkat Mukundan, Huettner Sven, Kabra Dinesh

机构信息

Department of Physics, Indian Institute of Technology Bombay , Powai, Mumbai, India 400076.

Organic and Hybrid Electronics, Macromolecular Chemistry I, Universität Bayreuth , Bayreuth 95440, Germany.

出版信息

J Phys Chem Lett. 2016 Aug 4;7(15):3014-21. doi: 10.1021/acs.jpclett.6b01207. Epub 2016 Jul 25.

DOI:10.1021/acs.jpclett.6b01207
PMID:27435936
Abstract

In this Letter, we investigate the temperature dependence of the optical properties of methylammonium lead iodide (MAPbI3 = CH3NH3PbI3) from room temperature to 6 K. In both the tetragonal (T > 163 K) and the orthorhombic (T < 163 K) phases of MAPbI3, the band gap (from both absorption and photoluminescence (PL) measurements) decreases with decrease in temperature, in contrast to what is normally seen for many inorganic semiconductors, such as Si, GaAs, GaN, etc. We show that in the perovskites reported here, the temperature coefficient of thermal expansion is large and accounts for the positive temperature coefficient of the band gap. A detailed analysis of the exciton line width allows us to distinguish between static and dynamic disorder. The low-energy tail of the exciton absorption is reminiscent of Urbach absorption. The Urbach energy is a measure of the disorder, which is modeled using thermal and static disorder for both the phases separately. The static disorder component, manifested in the exciton line width at low temperature, is small. Above 60 K, thermal disorder increases the line width. Both these features are a measure of the high crystal quality and low disorder of the perovskite films even though they are produced from solution.

摘要

在本信函中,我们研究了甲基碘化铅(MAPbI3 = CH3NH3PbI3)从室温到6 K的光学性质对温度的依赖性。在MAPbI3的四方相(T > 163 K)和正交相(T < 163 K)中,带隙(通过吸收和光致发光(PL)测量)均随温度降低而减小,这与许多无机半导体(如Si、GaAs、GaN等)通常的情况相反。我们表明,在此处报道的钙钛矿中,热膨胀系数很大,这是带隙呈现正温度系数的原因。对激子线宽的详细分析使我们能够区分静态无序和动态无序。激子吸收的低能尾部让人联想到乌尔巴赫吸收。乌尔巴赫能量是无序程度的一种度量,分别针对两个相使用热无序和静态无序对其进行建模。在低温下激子线宽中表现出的静态无序分量很小。高于60 K时,热无序会增加线宽。尽管这些钙钛矿薄膜是由溶液制备的,但这两个特征都表明其具有高晶体质量和低无序度。

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