电场
离域电子
材料科学
催化作用
光催化
光化学
化学物理
共价键
电荷(物理)
双金属片
电子
密度泛函理论
金属
纳米技术
联轴节(管道)
载流子
电荷密度
领域(数学)
键裂
电化学
电子传输链
人工光合作用
瓶颈
氧化还原
电子离域
电荷
分子动力学
劈理(地质)
作者
Man Zhang,Yida Zhang,Shuang Ma,Zhaoli Liu,Haiou Liang,Heng‐guo Wang,Jie Bai
摘要
ABSTRACT Photocatalytic production of H 2 O 2 from O 2 is attractive yet often self‐limiting because oxygenated intermediates persist on catalyst surfaces triggering O─O bond cleavage and H 2 O 2 decomposition. Herein, we demonstrate that this bottleneck can be mitigated by coordination‐microenvironment control coupling an enhanced built‐in electric field with regulated charge delocalization. A sulfonated covalent organic framework (TpPa ‐SO 3 H‐COF) was used as the support, and single Ni atoms were anchored at two distinct sites to form two atomically dispersed catalysts with the same metal species but markedly different local fields and coordination environments. Theoretical calculations and spectroscopic characterizations indicate that N coordination induces electron density redistribution, thereby enabling charge delocalization at the Ni center and further weakening *OOH adsorption. Meanwhile, a strengthened built‐in electric field further enhances photogenerated electron‐hole separation. As a result, the N‐coordinated site (N 1 ─Ni─O 2 ) achieves an enhanced H 2 O 2 production rate of 7189.52 µmol g −1 ·h −1 under sacrificial‐agent‐free conditions. This work identifies coordination‐driven regulation of the built‐in electric field and charge delocalization as an effective strategy for photocatalytic H 2 O 2 synthesis, providing valuable insights for the rational design of efficient photocatalysts.
科研通智能强力驱动
Strongly Powered by AbleSci AI