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Efficient Electrocatalytic Hydrogenation of Nitroaromatics into Arylamines on a Pseudocrystalline MoSx Cathode in an Alkaline Electrolyte

Bangxin Tao, Chenyang Xu, Dedong He, Jason Chun-Ho Lam, Jianjian Yi, Heng Zhang, Shuquan Huang*, Yongming Luo*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The development of an active Earth-abundant metal electrocatalyst for the hydrogenation of aromatic nitro compounds to aromatic amines using water as a clean and safe hydrogen source can greatly benefit the green synthesis of fine chemicals. Herein, we reported a novel pseudocrystalline structured molybdenum sulfide (p-MoSx) as a great electrocatalytic hydrogenation catalyst in converting nitrobenzene (Ph-NO2) to aniline (Ph-NH2) with a Faraday efficiency (F.E.%) of 82.2% and over 99.1% selectivity at a conversion of 99.6%, outperforming both the amorphous and crystalline MoSx catalysts. The p-MoSx was synthesized and deposited on a carbon cloth support via a hydrothermal-only strategy, where the crystallinities of the MoSx were realized by altering the feeding ratio of ammonium molybdate and thiourea during the synthetic processes. Activity origin investigations with underpotential deposition of hydrogen (HUPD) studies, electrochemical active areas (ECSA) measurements, and electrochemical impedance spectroscopy (EIS) tests revealed that the unique pseudocrystalline structure can optimize the chemisorbed hydrogen (Hads) formation and nitro group adsorption on the surface, thereby promoting the hydrogenation step and consequently improving the efficiency for converting Ph-NO2 to Ph-NH2 with high selectivity (>95%) in a broad potential range. In addition, the p-MoSx/CC electrode was also found to be efficient in catalyzing electrochemical hydrogenation of other nitro compounds containing fragile functional groups, such as C–X (X = F, Cl, Br), C═O, C═C, C≡N, and C≡C, to the corresponding aromatic amines. © 2025 American Chemical Society.
Original languageEnglish
Pages (from-to)9828-9840
JournalACS Sustainable Chemistry & Engineering
Volume13
Issue number25
Online published18 Jun 2025
DOIs
Publication statusPublished - 30 Jun 2025

Funding

The author acknowledges the generous financial support from the National Natural Science Foundation of China (No. 22308138), Yunnan Fundamental Research Project (No. 202401AU070167), The Analysis and Testing Foundation of Kunming University of Science and Technology (Nos. 2023T20230008, 2023M20222208084, 2024M20232208003), Yunnan Major Scientific and Technological Projects (No. 202302AG050002) and Yunnan Province Xingdian Talent Support Project (No. XDYC-YLXZ-2023-0004). The author also acknowledges the platform provided by the Key Laboratory of Yunnan Province for Synthesizing Sulfur-containing Fine Chemicals.

Research Keywords

  • Pseudocrystalline MoS2
  • Electrocatalytichydrogenation
  • Underpotential hydrogen desorption
  • nitrobenzene
  • chemisorbed hydrogen

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