结晶度
材料科学
微尺度化学
聚合物
石墨烯
离子键合
带隙
离子
纳米技术
能量密度
锂(药物)
共轭体系
离子电导率
化学工程
工作(物理)
光电子学
共价键
密度泛函理论
结晶学
平面的
混合材料
热液循环
科技与社会
电导率
材料设计
作者
Ziman Chen,Nana Li,Yilong Yang,Chongqing Yang,Rebecca Khoo,Kaiyue Jiang,Yahui Zhang,Jian Zhang,Yi Liu,Yongqin Lv
标识
DOI:10.1002/anie.202525047
摘要
ABSTRACT Two‐dimensional (2D) metal–organic frameworks (MOFs) integrating redox‐active linkers enable dense charge sites and open ion pathways for microscale energy storage. We report a quinoidal dicarboxylate ligand, AQM‐H 2 L, derived from p ‐azaquinodimethane, forming crystalline frameworks with Cu 2+ and Zn 2+ nodes. The Cu‐based MOF (AQM‐AQM‐H 2 L‐Cu) exhibits layered sheets (>14 Å spacing) constructed from dinuclear Cu‐carboxylate units and conjugated AQM linkers, which narrow the bandgap and introduce Cu 2+ /Cu + pseudocapacitance. Exfoliated nanosheets (∼5 nm) retain crystallinity and excellent processability. Integrated into graphene films, they deliver areal and volumetric capacitances of 29.6 mF cm −2 and 18.1 F cm −3 , achieving 2.6 mWh cm −3 energy density at 160 mW cm −3 . As ionic fillers (1 wt%) in PEO solid polymer electrolytes, the nanosheets markedly enhance LiFePO 4 cell performance, affording 169.8 mAh g −1 at 0.2 C and 93% retention after 400 cycles. This work establishes quinoidal linkers as a compact and robust design motif for ionically active 2D frameworks toward high‐performance miniature and solid‐state energy devices.
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