Yaxiong Zeng, Jie Yu, Beimeng Qi, Fang Tao, Xiaotian Yang, Yulin Wang, Xiaoguang Duan, Hailu Fu
Regulating the microenvironment of single-atom catalysts (SACs) is critical for steering ozone (O 3 ) activation toward selective on-demand reactive species generation. While first-shell coordination engineering modulates the center metal activity, it often disrupts the robust Mn-N 4 symmetry and thus compromises structural stability. Here, we developed atomically dispersed Mn-N 4 -S sites (S-MnN 4 ) that feature sulfur doping in the second coordination shell for catalytic ozonation and water pollutant degradation. Second-shell sulfur incorporation subtly elevated the d -band center and increased the spin state of Mn from low to intermediate, enhancing O 3 adsorption, dissociation and the preferred generation of high-valent Mn(IV)=O species. Consequently, S-MnN 4 achieved a 2.7-fold higher ozone utilization efficiency and double the turnover frequency versus pristine MnN 4 which catalyzed O 3 to primarily yield singlet oxygen. A continuous-flow system using a S-MnN 4 -packed column reactor demonstrated efficient chemical oxygen demand removal and exceptional durability over 170 h for the treatment of real-world wastewater. This work highlights second-shell coordination engineering as a feasible approach to overcome SAC activity-stability trade-off, advancing rational SAC design toward a sustainable environmental remediation. • Second-shell coordination engineering in Mn–N 4 sites (S-MnN 4 ) was achieved. • S doping steering catalytic ozonation from 1 O 2 toward high-valent Mn(IV)=O. • S-MnN 4 /O 3 system facilitated efficient Mn(IV)=O generation in pollutants elimination. • Second-shell S incorporation elevated Mn d -band center for enhanced O 3 activation. • A continuous-flow S-MnN 4 /O 3 system was demonstrated in actual wastewater application.