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基于有机-无机杂化相变晶体[C5N2H16]2SbBr5的温度触发介电-光学双开关

Temperature-Triggered Dielectric-Optical Duple Switch Based on an Organic-Inorganic Hybrid Phase Transition Crystal: [C5N2H16]2SbBr5.

作者信息

Mao Chen-Yu, Liao Wei-Qiang, Wang Zhong-Xia, Zafar Zainab, Li Peng-Fei, Lv Xing-Hui, Fu Da-Wei

机构信息

Ordered Matter Science Research Center, College of Chemistry and Chemical Engineering, Southeast University , Nanjing 211189, P. R. China.

出版信息

Inorg Chem. 2016 Aug 1;55(15):7661-6. doi: 10.1021/acs.inorgchem.6b01107. Epub 2016 Jul 14.

Abstract

Molecular optical-electrical duple switches (switch "ON" and "OFF" bistable states) represent a class of highly desirable intelligent materials because of their sensitive switchable physical and/or chemical responses, simple and environmentally friendly processing, light weights, and mechanical flexibility. In the current work, the phase transition of 1 (general formula R2MX5, [C5N2H16]2[SbBr5]) can be triggered by the order-disorder transition of the organic cations at 278.3 K. The temperature-induced phase transition causes novel bistable optical-electrical duple characteristics, which indicates that 1 might be an excellent candidate for a potential switchable optical-electrical (fluorescence/dielectric) material. In the dielectric measurements, remarkable bistable dielectric responses were detected, accompanied by striking anisotropy along various crystallographic axes. For the intriguing fluorescence emission spectra, the intensity and position changed significantly with the occurrence of the structural phase transition. We believe that these findings might further promote the application of halogenoantimonates(III) and halogenobismuthates(III) in the field of optoelectronic multifunctional devices.

摘要

分子光电双稳态开关(开关处于“开”和“关”双稳态)由于其敏感的可切换物理和/或化学响应、简单且环保的加工工艺、轻质以及机械柔韧性,代表了一类极具吸引力的智能材料。在当前工作中,1(通式为R2MX5,[C5N2H16]2[SbBr5])的相变可由有机阳离子在278.3 K时的有序-无序转变引发。温度诱导的相变导致了新颖的双稳态光电特性,这表明1可能是潜在的可切换光电(荧光/介电)材料的极佳候选者。在介电测量中,检测到了显著的双稳态介电响应,并伴随着沿各个晶轴的显著各向异性。对于有趣的荧光发射光谱,其强度和位置随着结构相变的发生而显著变化。我们相信这些发现可能会进一步推动卤代锑酸盐(III)和卤代铋酸盐(III)在光电子多功能器件领域的应用。

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