材料科学
金属有机骨架
导电体
共轭体系
配体(生物化学)
戒指(化学)
纳米技术
平面的
结晶学
化学
聚合物
物理化学
有机化学
吸附
生物化学
受体
计算机图形学(图像)
计算机科学
复合材料
作者
Mingyu Yang,Yi Zhang,Renlong Zhu,Junjun Tan,Jinxin Liu,Wei Zhang,Meng Zhou,Zheng Meng
标识
DOI:10.1002/anie.202405333
摘要
Abstract Electrically conducting two‐dimensional (2D) metal–organic frameworks (MOFs) have garnered significant interest due to their remarkable structural tunability and outstanding electrical properties. However, the design and synthesis of high‐performance materials face challenges due to the limited availability of specific ligands and pore structures. In this study, we have employed a novel highly branched D 3h symmetrical planar conjugated ligand, dodechydroxylhexabenzotrinaphthylene (DHHBTN) to fabricate a series of 2D conductive MOFs, named M–DHHBTN (M=Co, Ni, and Cu). This new family of MOFs offers two distinct types of pores, elevating the structural complexity of 2D conductive MOFs to a more advanced level. The intricate tessellation patterns of the M–DHHBTN are elucidated through comprehensive analyses involving powder X‐ray diffraction, theoretical simulations, and high‐resolution transmission electron microscope. Optical‐pump terahertz‐probe spectroscopic measurements unveiled carrier mobility in DHHBTN‐based 2D MOFs spanning from 0.69 to 3.10 cm 2 V −1 s −1 . Among M–DHHBTN famility, Cu‐DHHBTN displayed high electrical conductivity reaching 0.21 S cm −1 at 298 K with thermal activation behavior. This work leverages the “branched conjugation” of the ligand to encode heteroporosity into highly conductive 2D MOFs, underscoring the significant potential of heterogeneous double‐pore structures for future applications.
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