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NaCl-Assisted Pyrolysis of Zn (II) Complexes with BTC and PDC to Synthesize Cl, N-Codoped Carbon Highly Efficient for
Jin-Qiang Teng1, Xiao-Bo Ding1, Qing-Cheng Cao1,2
1Key Laboratory of Green Chemical Process of Ministry of Education, Key Laboratory of Novel Reactor and Green Chemical Technology of Hubei Province, School of Chemical Engineering and Pharmacy, Wuhan Institute of Technology, Wuhan 430205, China.
Abstract:
The design of high-performance, cost-effective, and durable electrocatalysts for the oxygen reduction reaction (ORR) is essential for the widespread deployment of clean energy technologies, including fuel cells and metal-air batteries. Carbon-based metal-free catalysts (CMFCs) have emerged as promising alternatives to Pt-based materials, with their ORR performance tunable through heteroatom doping and defect engineering. In this study, we report a novel Cl, N-codoped porous carbon catalyst (Cl, N-C) enriched with structural defects, synthesized via a modified metal-organic framework (MOF) strategy. Zinc-1,3,5-benzenetricarboxylate (Zn-BTC) was employed as the MOF precursor, with partial substitution of BTC by pyridine-3,5-dicarboxylate (PDC) to introduce nitrogen and defect sites. During Zn-BTC-PDC pyrolysis, NaCl was added to enable Cl doping and promote further defect formation. Structural characterization reveals that the optimized catalyst (Cl, N-C-2) possesses abundant mesopores, high defect density, and a favorable distribution of pyridinic and graphitic nitrogen species. As a result, Cl, N-C-2 exhibits outstanding ORR activity in alkaline media, achieving a half-wave potential of 0.891 V vs RHE, which ranks among the highest reported to date for CMFCs. Electrochemical analyses demonstrate enhanced electrochemically active surface area, faster kinetics, and excellent durability. In situ ATR-SEIRAS measurements further reveal that Cl doping promotes the formation and stabilization of key OOH intermediates, facilitating a dominant four-electron ORR pathway. When applied as an air cathode in Zn-air batteries, Cl, N-C-2 delivers higher discharge voltage and power density than Pt/C. This work provides an effective strategy for designing high-performance metal-free carbon electrocatalysts through synergistic heteroatom doping and defect engineering.
