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May 28, 2026Green Energy & Environment0 citationsOpen Access

Synergistic thermal-mass enrichment on macro-mesoporous N,S-codoped carbon derived from used tea for ultrafast nitroaromatics reduction

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THTao HuangJMJie MaoYZYujun Zhu

Key Points

  • This research aims to develop an eco-friendly carbon-based catalyst for the efficient reduction of nitroaromatic compounds.
  • Hierarchical N,S-codoped carbon catalyst derived from used tea was synthesized using alkaline-mediated thiourea activation carbonization.
  • Finite element method and density functional theory calculations were employed to analyze the catalyst's performance and activation energy for reactions.
  • The optimized catalyst (N,S 1 -TC-600) was tested for its catalytic activity in nitroaromatic reduction reactions.
  • The optimized N,S 1 -TC-600 demonstrated high catalytic activity and reduced activation energy for 4-nitrophenol reduction.
  • The hierarchical macro-mesoporous structure provided enhanced accessibility and wettability of active sites.
  • Synergistic effects from thermal accumulation and mass transfer enrichment improved overall catalytic performance.

Abstract

Nitroaromatic reduction is one of the most valuable industrial reactions; however, the development of eco-friendly carbon-based metal-free catalysts is extremely limited by their low activities and insufficient wettability. Herein, we present a highly efficient hierarchical macro-mesoporous N,S-codoped carbon catalyst, derived from used tea featuring a superhydrophilic structure achieved through an alkaline-mediated thiourea activation carbonization strategy, for the reduction of nitroaromatic compounds. The ultrahigh-carbon macroporous structure is crucial for maximizing the exposure of the external surface area of active sites. Additionally, N,S-codoping enhances surface wettability, ensuring excellent accessibility of active sites in aqueous reactions. These outstanding advantages enable the optimized catalyst (N,S 1 -TC-600) to exhibit high catalytic activity in nitroaromatic reduction. Finite element method and density functional theory calculations indicate that N and S codoping within the macroporous structure results in superior catalytic performance through the synergistic effect of thermal accumulation and mass transfer enrichment on the macro-mesoporous carbon catalyst, which is driven by redistribution of charge and spin density. Furthermore, activation energy barrier calculations revealed that the optimized N,S 1 -TC-600 has a lower activation energy for 4-nitrophenol reduction. This work presents a valuable methodology for constructing and modulating the electronic state of highly efficient carbon-based metal-free catalysts, which may provide a general guidance for the fabrication of other carbon-based catalysts.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/6a17db293fad632b0f9d7e6bhttps://doi.org/10.1016/j.gee.2026.05.017
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