选择性
催化作用
化学
构象变化
格式化
分子动力学
分子构象
组合化学
产品(数学)
材料科学
协同催化
纳米技术
光化学
结晶学
立体化学
计算化学
机制(生物学)
作者
Qing Chen,Xiaolei Yuan,Ming Ge,Yanfeng Tang,Xiaorong Zhu
标识
DOI:10.1021/acs.jpcc.5c08230
摘要
Sn single-atom catalysts exhibit exceptional tunability for CO 2 electroreduction, yet atomic-scale mechanisms governing product selectivity (HCOOH vs CO) remain unresolved. Through slow-growth molecular dynamics simulations, we reveal that intermediate conformational dynamics, governed by Sn coordination environments, critically steer selectivity. For HCOOH-selective Sn-N 4 sites, facile conformational flipping of *COOH to *OCHO during hydrogenation enabled formate production. For CO-selective Sn-ON 3, electronegative O-ligands enhance Sn electrophilicity, immobilizing CO 2 – and suppressing conformational flipping. This steric-electronic constraint directs the addition of H + to carbon, favoring *COOH formation and CO production. Coordination-dependent conformational locking emerges as the decisive selectivity factor, establishing a universal paradigm for catalyst design via coordination engineering.
科研通智能强力驱动
Strongly Powered by AbleSci AI