Chenyu MaHaiyan HeJinlong QinLang LuoYue LanJian ZhangLu YangQuanguo JiangHuajie Huang
Electrochemical water splitting is long regarded as a green and feasible pathway to realize the scalable hydrogen production, while the overall hydrogen evolution reaction (HER) efficiency is largely dependent on the electrocatalytic ability of the cathode catalysts. Herein, the in situ growth of hydrazone‐linked covalent organic framework (COF‐42) nanocrystals with a unique nanoflower‐shaped morphology on 2D ultrathin Ti 3 C 2 T x MXene nanosheets (COF/Ti 3 C 2 T x ) is achieved through a convenient and robust stereoassembly strategy. Strikingly, the marriage of COF‐42 and Ti 3 C 2 T x nanosheets not only offers multiscale porous channels for the fast transportation of electrolyte and electrons, but also enables the full exposure and activation of numerous catalytically active centers. As a consequence, the optimized COF/Ti 3 C 2 T x nanoarchitecture displays exceptional HER properties in terms of a very low onset potential of 19 mV, a small Tafel slope of 50 mV dec −1 as well as reliable long‐term durability, which are comparable to those of commercial Pt/C catalyst. Density functional theory calculations further disclose that the rational combination of COF‐42 with Ti 3 C 2 T x provides more diversified active positions with appropriate Δ G H values, thus leading to a boosted hydrogen generation rate.
Huifen ZhuangCan GuoJianlin HuangLiwen WangZixi ZhengHai‐Ning WangYifa ChenYa‐Qian Lan
Chao LinHuayun MaJun‐Ru HeQing XuMeng SongCheng‐Xing CuiYong ChenChunxiang LiMingli JiaoLipeng Zhai
Daqing FanWeiwen WangTian MaXianglin LuoChao HeXikui LiuShuang Li
Jieyu YueXiu-Li DingLi-Ping SongYutong WangPeng YangYu MaBo Tang
Junfa YuanKeke LiuYunqiu ZhouPeng ChengBin ZhouXue‐Li CaoMiaomiao TianShi‐Peng SunYatao ZhangJunyong Zhu