Wang Rui, Lyu Hang, Poon Ho Gerald Siu Hang, Chen Huanhuan, Yuan Yufei, Bang Ki-Taek, Kim Yoonseob
Department of Chemical and Biological Engineering, The Hong Kong University of Science and Technology, Hong Kong SAR, 999077, China.
Department of Chemistry, The Hong Kong University of Science and Technology, Hong Kong SAR, 999077, China.
Small. 2024 Jan;20(4):e2306634. doi: 10.1002/smll.202306634. Epub 2023 Sep 13.
Chemically inert organic networks exhibiting electrical conductivity comparable to metals can advance organic electronics, catalysis, and energy storage systems. Covalent-organic frameworks (COFs) have emerged as promising materials for those applications due to their high crystallinity, porosity, and tunable functionality. However, their low conductivity has limited their practical utilization. In this study, copper-coordinated-fluorinated-phthalocyanine and 2,3,6,7-tetrahydroxy-9,10-anthraquinone-based COF (CuPc-AQ-COF) films with ultrahigh conductivity are developed. The COF films exhibit an electrical conductivity of 1.53 × 10 S m and a Hall mobility of 6.02 × 10 cm V s at 298 K, reaching the level of metals. The films are constructed by linking phthalocyanines and anthraquinones through vapor-assisted synthesis. The high conductivity properties of the films are attributed to the molecular design of the CuPc-AQ-COFs and the generation of high-quality crystals via the vapor-assisted method. Density functional theory analysis reveals that an efficient donor-acceptor system between the copper-coordinated phthalocyanines and anthraquinones significantly promotes charge transfer. Overall, the CuPc-AQ-COF films set new records of COF conductivity and mobility and represent a significant step forward in the development of COFs for electronic, catalytic, and electrochemical applications.
具有与金属相当的导电性的化学惰性有机网络可推动有机电子学、催化和储能系统的发展。共价有机框架(COF)因其高结晶度、孔隙率和可调功能,已成为这些应用中很有前景的材料。然而,其低导电性限制了它们的实际应用。在本研究中,开发了具有超高导电性的铜配位氟化酞菁和基于2,3,6,7 - 四羟基 - 9,10 - 蒽醌的COF(CuPc - AQ - COF)薄膜。该COF薄膜在298 K时表现出1.53×10 S m的电导率和6.02×10 cm V s的霍尔迁移率,达到了金属的水平。这些薄膜是通过气相辅助合成将酞菁和蒽醌连接而成的。薄膜的高导电性能归因于CuPc - AQ - COF的分子设计以及通过气相辅助方法生成的高质量晶体。密度泛函理论分析表明,铜配位酞菁和蒽醌之间高效的供体 - 受体体系显著促进了电荷转移。总体而言,CuPc - AQ - COF薄膜创造了COF电导率和迁移率的新纪录,代表了COF在电子、催化和电化学应用发展方面向前迈出的重要一步。