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February 19, 2026Molecules1 citationsOpen Access

Solar-Driven Paired Electrolysis System: A Green Electrosynthesis Strategy for Valorizing Agroforestry Biomass Derived Furanal Compounds

YWYinyin WuRXRun XuBWBowei Wang

Key Points

  • The primary aim is to enhance the efficiency of converting biomass-derived furanal compounds using a paired electrolysis system.
  • Utilized a homogeneous catalyst, 4-acetamido-TEMPO (ACT), to reduce anode potential sensitivity.
  • Conducted paired electrolysis on 5-hydroxymethylfurfural (HMF) and furfural (FUR) using solar energy.
  • Assessed faradaic efficiency and stability over multiple cycles.
  • Achieved faradaic efficiencies of 190.69% for FUR and 189.11% for HMF.
  • Maintained over 167.64% faradaic efficiency after successive cycles.
  • Demonstrated competitive substrate conversion efficiency relative to electrically driven systems.

Abstract

Paired electrolysis represents a more environmentally sustainable and efficient approach for converting agroforestry biomass-derived 5-hydroxymethylfurfural (HMF) and furfural (FUR) into valuable fine chemicals and fuel additives. A critical challenge in developing paired electrolysis systems for furanal compounds is finding the optimal potential matching between the anode and the cathode. One solution is to reduce the potential sensitivity of the anode so that the paired electrolysis system can be regulated only by the cathode potential. In this study, we employed the homogeneous catalyst 4-acetamido-TEMPO (ACT) to facilitate oxidation reaction at the anode, enabling the potential sensitivity of the anode to be reduced. The results displayed the furanal substrates oxidation proceeds through a non-electrochemical chemical reaction with the active oxoammonium cation (ACT+), rather than being directly governed by the anode potential. The paired electrolysis system exhibited enhanced catalytic performance, with a total faradaic efficiency of 190.69% and 189.11% in the FUR and HMF paired electrolysis setup, respectively. Furthermore, this system demonstrated excellent stability, maintaining a total faradaic efficiency of over 167.64% after multiple successive cycles. Additionally, the solar-driven paired electrolysis system showed commendable substrate conversion capabilities, achieving a total faradaic efficiency of 187.89%, comparable to that of the electrically driven system. The mechanisms of the ACT electro-oxidation of furanal compounds and the construction of paired electrolysis systems for furanal compounds were proposed and discussed. This work aims to enhance electrical energy efficiency and underscore the potential of paired electrochemical catalysis for sustainable biomass conversion in the green economy.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/6996a77aecb39a600b3ed292https://doi.org/10.3390/molecules31040678
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