Su Kaixin, Sun Ningwei, Yan Zhihua, Jin Sizhuo, Li Xiaoqian, Wang Daming, Zhou Hongwei, Yao Jianan, Chen Chunhai
Key Laboratory of High Performance Plastics (Jilin University), Ministry of Education, National & Local Joint Engineering Laboratory for Synthesis Technology of High Performance Polymer, College of Chemistry, Jilin University, Changchun 130012, PR China.
Institute of Physical Chemistry and Polymer Physics, Leibniz Institut für Polymerforschung Dresden e.V, Hohe Strasse 6, Dresden D-01069, Germany.
ACS Appl Mater Interfaces. 2020 May 13;12(19):22099-22107. doi: 10.1021/acsami.0c01021. Epub 2020 May 4.
Electrochromic (EC)/electrofluorochromic (EFC) bifunctional materials are receiving great attention because of their promising applications in optoelectronic devices. However, the development of ideal EC/EFC bifunctional materials is still a great challenge because of the poor integration of EC/EFC performances (optical contrast, response speed, and switching stability). Herein, we reported two novel diphenylamine-based mixed valence (MV) polyamides (S-HPA and P-HPA) with spirobifluorene (2,7-positions) and pyrene (1,6-positions) as bridged fluorescence units, respectively, showing impressive cyclability and fluorescence contrast with rapid switching. Through the formation of an effective electronic coupling between the two nitrogen centers using spirobifluorene/pyrene bridges, we demonstrated that different bridges have significant effects on the thermal and electrooptical characteristics of polyamides. In addition to lower fluorescence quantum yield and glass transition temperature, the S-HPA exhibited superior cyclability (contrast change <3.4%/14% over 500/300 cycles for EC/EFC switching), higher color/fluorescence contrast (64%/304%), and faster switching time (<2.6 s), mainly owing to the shorter conjugated length and more twisted configuration of the spirobifluorene bridge. The design principle of MV polymers with fluorophore bridges proposed here will be a promising way to realize high-performance EC/EFC devices and will also provide new insights into their future development and applications.
电致变色(EC)/电致荧光变色(EFC)双功能材料因其在光电器件中的应用前景而备受关注。然而,由于EC/EFC性能(光学对比度、响应速度和开关稳定性)的不良整合,理想的EC/EFC双功能材料的开发仍然是一个巨大的挑战。在此,我们报道了两种新型的基于二苯胺的混合价(MV)聚酰胺(S-HPA和P-HPA),分别以螺二芴(2,7-位)和芘(1,6-位)作为桥连荧光单元,显示出令人印象深刻的循环性和快速切换的荧光对比度。通过使用螺二芴/芘桥在两个氮中心之间形成有效的电子耦合,我们证明了不同的桥对聚酰胺的热和电光特性有显著影响。除了较低的荧光量子产率和玻璃化转变温度外,S-HPA还表现出优异的循环性(EC/EFC切换在500/300次循环中对比度变化<3.4%/14%)、更高的颜色/荧光对比度(64%/304%)和更快的切换时间(<2.6秒),这主要归因于螺二芴桥较短的共轭长度和更扭曲的构型。这里提出的具有荧光团桥的MV聚合物的设计原则将是实现高性能EC/EFC器件的一种有前途的方法,也将为它们未来的发展和应用提供新的见解。