材料科学
碳纤维
杂原子
空位缺陷
电催化剂
催化作用
热解
金属有机骨架
制作
正电子湮没谱学
多孔性
法拉第效率
纳米技术
吸附
化学工程
物理化学
电化学
电极
结晶学
化学
正电子湮没
有机化学
电子
正电子
戒指(化学)
替代医学
病理
复合数
工程类
复合材料
量子力学
医学
物理
作者
Li−Li Ling,Long Jiao,Xiaoshuo Liu,Yun Dong,Weijie Yang,Hongjun Zhang,Bangjiao Ye,Jun Chen,Hai‐Long Jiang
标识
DOI:10.1002/adma.202205933
摘要
The fabrication of intrinsic carbon defects is usually tangled with doping effects, and the identification of their unique roles in catalysis remains a tough task. Herein, a K+ -assisted synthetic strategy is developed to afford porous carbon (K-defect-C) with abundant intrinsic defects and complete elimination of heteroatom via direct pyrolysis of K+ -confined metal-organic frameworks (MOFs). Positron-annihilation lifetime spectroscopy, X-ray absorption fine structure measurement, and scanning transmission electron microscopy jointly illustrate the existence of abundant 12-vacancy-type carbon defects (V12 ) in K-defect-C. Remarkably, the K-defect-C achieves ultrahigh CO Faradaic efficiency (99%) at -0.45 V in CO2 electroreduction, far surpassing MOF-derived carbon without K+ etching. Theoretical calculations reveal that the V12 defects in K-defect-C favor CO2 adsorption and significantly accelerate the formation of the rate-determining COOH* intermediate, thereby promoting CO2 reduction. This work develops a novel strategy to generate intrinsic carbon defects and provides new insights into their critical role in catalysis.
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