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April 27, 2026National Science Review0 citationsOpen Access

Nanogalvanic cell catalysts: bridging electrochemical and thermal catalysis

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ZHZhixuan HuangYDYawen DaiSLShuchun Li

Key Points

  • The aim is to overcome the activity-selectivity trade-off in nitroarene hydrogenation using nanogalvanic cell catalysts.
  • Developed Pt@C/TiO2 as a nanogalvanic cell catalyst integrating electrochemical and thermal processes.
  • Investigated the mechanism of concerted proton-electron transfer in heterogeneous catalysis.
  • Analyzed the catalyst performance regarding conversion and selectivity to anilines.
  • Achieved near-quantitative conversion of 4-nitrostyrene to 4-aminostyrene with over 97% selectivity.
  • Demonstrated exceptional stability and poisoning tolerance due to the carbon shell blocking reactive molecules.
  • Corroborated galvanic-cell operation through electrochemical coupling analyses.

Abstract

Abstract Selective nitroarene hydrogenation to anilines faces an intractable activity-selectivity trade-off: conventional Horiuti-Polanyi (H-P) catalysis triggers over-hydrogenation of coexisting unsaturated groups via free H* species. Herein, we report Pt@C/TiO2 as a nanogalvanic cell catalyst (NGC) that bridges electrochemical and thermal catalysis by integrating concerted proton–electron transfer (CPET) into heterogeneous catalysis. In Pt@C/TiO2, Pt nanoparticles wrapped by an ultrathin carbon shell catalyze H2 oxidation, whereas TiO2 hosts nitro reduction. Protons migrate through solvent hydrogen-bond networks and electrons transfer through the conductive TiO2 support, enabling a CPET-like reduction that largely bypasses the H-P route without direct substrate-Pt contact. Electrochemical coupling analyses corroborate galvanic-cell operation. Pt@C/TiO2 affords near-quantitative conversion and 97% selectivity to 4-aminostyrene from 4-nitrostyrene, while the carbon shell blocks CO/sulfur access to Pt, delivering exceptional poisoning tolerance and stability. This NGC paradigm offers a general strategy for site-separated redox catalysis combining electrocatalytic selectivity with thermal-process simplicity.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69eefdb5fede9185760d47f6https://doi.org/10.1093/nsr/nwag186
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