催化作用
密度泛函理论
化学
活动站点
电子转移
活动中心
分子
锇
轨道能级差
吸附
光化学
计算化学
物理化学
生物化学
有机化学
钌
作者
Zhichao Yu,Zhenjin Xu,Ruijin Zeng,Man Xu,Haisu Zheng,Da Huang,Zuquan Weng,Dianping Tang
标识
DOI:10.1002/anie.202414625
摘要
A high‐efficiency PtZnCd nanozyme was screened with density functional theory (DFT) and unique d‐orbital coupling features for sensitive enrichment and real‐time analysis of CO‐releasing molecule‐3 (CORM‐3). Multi‐catalytic sites in the nanozyme showed a high reactivity of up to 72.89 min‐1 for peroxidase‐like enzymes (POD) reaction, which was 2.2, 4.07, and 14.67 times higher than that of PtZn (32.67 min‐1), PtCd (17.89 min‐1), and Pt (4.97 min‐1), respectively. Normalization of the catalytic sites showed that the catalytic capacity of the active site in PtZnCd was 2.962 U μmol‐1, which was four times higher than that of pure Pt site (0.733 U μmol‐1). DFT calculations showed that improved d‐orbital coupling between different metals reduces the position of the center of the shifted whole d‐band relative to the Fermi energy level, thereby increasing the contribution of the sites to the electron transfer from the active center, accompanied with enhanced substrate adsorption and intermediate conversion in the catalytic process. The potential adsorption principle and color development mechanism of CORM‐3 on PtZnCd were determined, and the practical application in drug metabolism was validated in vitro, in zebrafish and mice as a model, demonstrating that transition metal doping effectively engineers high‐performance nanozymes and optimizes artificial enzymes.
科研通智能强力驱动
Strongly Powered by AbleSci AI