电合成
亲核细胞
电化学
电催化剂
氢氧化物
脱氢
催化作用
电子转移
材料科学
氧化还原
镍
质子耦合电子转移
无机化学
光化学
化学
物理化学
有机化学
电极
作者
Wei Chen,Yanyong Wang,Binbin Wu,Jianqiao Shi,Yingying Li,Leitao Xu,Chao Xie,Wang Zhou,Yucheng Huang,Tehua Wang,Shiqian Du,Minglei Song,Dongdong Wang,Chen Chen,Jianyun Zheng,Jilei Liu,Chung‐Li Dong,Yuqin Zou,Jun Chen,Shuangyin Wang
标识
DOI:10.1002/adma.202105320
摘要
The nucleophile oxidation reaction (NOR) is of enormous significance for organic electrosynthesis and coupling for hydrogen generation. However, the nonuniform NOR mechanism limits its development. For the NOR, involving electrocatalysis and organic chemistry, both the electrochemical step and non-electrochemical process should be taken into account. The NOR of nickel-based hydroxides includes the electrogenerated dehydrogenation of the Ni2+ -OH bond and a spontaneous non-electrochemical process; the former determines the electrochemical activity, and the nucleophile oxidation pathway depends on the latter. Herein, the space-confinement-induced synthesis of Ni3 Fe layered double hydroxide intercalated with single-atom-layer Pt nanosheets (Ni3 Fe LDH-Pt NS) is reported. The synergy of interlayer Pt nanosheets and multiple defects activates Ni-OH bonds, thus exhibiting an excellent NOR performance. The spontaneous non-electrochemical steps of the NOR are revealed, such as proton-coupled electron transfer (PCET; Ni3+ -O + X-H = Ni2+ -OH + X• ), hydration, and rearrangement. Hence, the reaction pathway of the NOR is deciphered, which not only helps to perfect the NOR mechanism, but also provides inspiration for organic electrosynthesis.
科研通智能强力驱动
Strongly Powered by AbleSci AI