Shao Weifan, Yu Mengjiao, Xu Xusheng, Han Xinrui, Chen Yuwen, Han Jiangang, Wu Guangyu, Xing Weinan
College of Ecology and Environment, Co-Innovation Center for the Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing, 210037, China.
National Positioning Observation Station of Hung-tse Lake Wetland Ecosystem in Jiangsu Province, Hongze, 223100, China.
Small. 2024 Jun;20(24):e2306567. doi: 10.1002/smll.202306567. Epub 2023 Dec 31.
Rational tailoring of the local coordination environment of single atoms has demonstrated a significant impact on the electronic state and catalytic performance, but the development of catalysts beyond noble/transition metals is profoundly significant and highly desired. Herein, the main-group metal indium (In) single atom is immobilized on sulfur-doped porous carbon nitride nanosheets (In@CNS) in the form of three nitrogen atoms coordinated with one sulfur atom (In-N-S). Both theoretical calculations and advanced characterization investigations clearly elucidated that the single-atomic In-N-S structures on In@CNS are powerful in promoting the dissociation of excitons into more free carriers as well as the charge separation, synergistically elevating electron concentration by 2.19 times with respect to pristine CNS. Meanwhile, the loading of In single atoms on CNS is responsible for altering electronic structure and lowering the Gibbs free energy for hydrogen adsorption. Consequently, the optimized In@CNS-5.0 exhibited remarkable photocatalytic performance, remarkable water-splitting and tetracycline hydrochloride degradation. The H production achieved to 10.11 mmol hg with a notable apparent quantum yield of 19.70% at 400 nm and remained at 10.40% at 420 nm. These findings open a new perspective for in-depth comprehending the effect of the main-group metal single-atom coordination environment on promoting photocatalytic performance.
单原子局部配位环境的合理调控已被证明对电子态和催化性能有显著影响,但开发超越贵金属/过渡金属的催化剂具有深远意义且备受期待。在此,主族金属铟(In)单原子以三个氮原子与一个硫原子配位(In-N-S)的形式固定在硫掺杂的多孔氮化碳纳米片(In@CNS)上。理论计算和先进表征研究均清楚地表明,In@CNS上的单原子In-N-S结构在促进激子解离为更多自由载流子以及电荷分离方面具有强大作用,相对于原始CNS,协同将电子浓度提高了2.19倍。同时,In单原子负载在CNS上有助于改变电子结构并降低氢吸附的吉布斯自由能。因此,优化后的In@CNS-5.0表现出卓越的光催化性能、显著的水分解和盐酸四环素降解性能。在400 nm处,产氢量达到10.11 mmol hg,表观量子产率高达19.70%,在420 nm处仍保持在10.40%。这些发现为深入理解主族金属单原子配位环境对促进光催化性能的影响开辟了新视角。