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基于聚三芳基胺的聚合物复合材料的最佳组成,以最大化光折变性能。

Optimal composition of the poly(triarylamine)-based polymer composite to maximize photorefractive performance.

作者信息

Masumura Kento, Nakanishi Ikumi, Van Thi Khuat Khanh, Kinashi Kenji, Sakai Wataru, Tsutsumi Naoto

机构信息

Doctor's Program of Materials Chemistry, Graduate School of Science and Technology, Kyoto Institute of Technology, Matsugasaki, Sakyo, Kyoto, 606-8585, Japan.

Master's Program of Innovative Materials, Graduate School of Science and Technology, Kyoto Institute of Technology, Matsugasaki, Sakyo, Kyoto, 606-8585, Japan.

出版信息

Sci Rep. 2019 Jan 24;9(1):739. doi: 10.1038/s41598-018-36980-2.

Abstract

A holographic display system requires the external diffraction efficiency to be greater than 10% and four orders of magnitude of sensitivity for practical usage. To achieve such requirements, the photorefractive (PR) performance of PR composite based on poly[bis(2,4,6-trimethylpheneyl)amine] (PTAA) has been investigated. In the present report, the change of the content of PTAA as a photoconductive polymer, (2,4,6-trimethylphenyl)diphenylamine (TAA) as a photoconductive plasticizer, and second trap agent bathophenanthroline (BPhen) reasonably optimized the PR response time and external diffraction efficiency. High sensitivity of 1851 cm J with response time of 494 μs and external diffraction efficiency of 23.9% were achieved at 532 nm and 60 V μm by reducing the content of PTAA and increasing the contents of TAA and BPhen. Decreasing the amount of PTAA and increasing the contents of TAA and BPhen lowered the absorption coefficient, resulting in the high external diffraction efficiency. The narrower distribution of the electronic density of states (DOS) for PTAA/TAA (43.5/20 and 33.5/30) also contributed to the shorter PR response time of hundreds of microseconds.

摘要

全息显示系统在实际应用中要求外部衍射效率大于10%且灵敏度达到四个数量级。为满足这些要求,对基于聚双(2,4,6-三甲基苯基)胺的光折变(PR)复合材料的光折变性能进行了研究。在本报告中,作为光电导聚合物的PTAA、作为光电导增塑剂的(2,4,6-三甲基苯基)二苯胺(TAA)以及第二陷阱剂二氮杂菲(BPhen)含量的变化合理优化了光折变响应时间和外部衍射效率。通过降低PTAA的含量并增加TAA和BPhen的含量,在532 nm和60 V/μm条件下实现了1851 cm/J的高灵敏度、494 μs的响应时间以及23.9%的外部衍射效率。降低PTAA的量并增加TAA和BPhen的含量降低了吸收系数,从而实现了高外部衍射效率。PTAA/TAA(43.5/20和33.5/30)的电子态密度(DOS)分布更窄也有助于实现数百微秒的较短光折变响应时间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a1b5/6345868/4ed37adf2900/41598_2018_36980_Fig1_HTML.jpg

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