材料科学
离子液体
异质结
兴奋剂
化学工程
碳纤维
纳米技术
催化作用
化学
光电子学
有机化学
复合数
复合材料
工程类
作者
Fei‐Xiang Ma,Jiayu Ma,Yi Ren,Hao Wang,Lin Xie,Zhenye Zhu,Jiaheng Zhang
标识
DOI:10.1002/advs.202206029
摘要
Abstract The rational design of catalysts’ spatial structure is vitally important to boost catalytic performance by exposing the active sites and increasing specific surface area. Herein, the heteroatom doping and morphology of CoNi metal‐organic frameworks(MOF) are modulated by controlling the volume of ionic liquid used in synthesis and generating CoSe 2 ‐NiSe 2 heterojunction structures wrapped by N, P, F tri‐doped carbon(NPFC) after a selenisation process. Notably, the unique cubic porous structure of CoSe 2 ‐NiSe 2 /NPFC results in a specific surface five times that of the sheet‐like hollow structure produced without ionic liquid. Moreover, the charge redistribution during heterojunction formation is verified in detail using synchrotron radiation. Density functional theory calculations reveal that the formation of heterojunctions and doping of heteroatoms successfully lower the ΔG H* and ΔG OH* values. Consequently, CoSe 2 ‐NiSe 2 /NPFC exhibits excellent activity for HER in both acidic and alkaline solutions. Meanwhile, CoSe 2 ‐NiSe 2 /NPFC as a cathode material exhibits excellent performance in a flexible solid‐state supercapacitor, with a superior energy density of 55.7 Wh kg −1 at an extremely high‐power density of 15.9 kW kg −1 . This material design provides new ideas for not only using ionic liquids to modulate the morphology of MOFs but also deriving heterojunctions and heteroatom‐doped carbon from MOFs.
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