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Updated: Jan 14, 2026

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Aqueous-Phase Reduction of Nitrobenzene Enabled by a Symmetry-Disrupted Fe Single-Atom Catalyst Featuring Phosphorus
Jianfei Yao1, Dexin Wang1, Dezhi Kong1
1Key Lab for Colloid and Interface Science of Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, China.
Abstract:
The selective reduction of nitroarenes to arylamines is a fundamental transformation in synthetic chemistry, yet it typically relies on harsh conditions, including elevated temperatures, pressurized H2, noble metal catalysts, and organic solvents. Developing non-noble metal catalysts that deliver high efficiency and selectivity in environmentally friendly solvents remains highly desirable but challenging. We report a robust and easily prepared Fe-N/P-C single-atom catalyst, based on earth-abundant iron, which exhibits an outstanding reaction rate for the selective reduction of nitroarenes in water, enabled by an asymmetrically coordinated Fe center. It effectively facilitates the dissociation of N-H bonds in hydrazine, the rate-determining step that typically retards the fast action of hydrazine in various reduction processes, thereby promoting an electron-driven reduction pathway for the hydrogenation processes. Consequently, the reusable and sustainable Fe-N/P-C catalyst delivers previously unattainable turnover frequencies, even in large-scale reactions, while the normalized production rate stands an order of magnitude above the state of the art.
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