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April 16, 2026Chinese Journal of Chemistry1 citations

Selective Photocatalytic Upgrading of Polylactic Acid under Mild Conditions at Interface‐Engineered MoS 2 / BiOCl Heterojunction

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TGTing GaoKZKe ZhaoXLXinxin Liang

Key Points

  • The research aims to improve product selectivity and efficiency in the photocatalytic upcycling of polylactic acid using engineered heterojunctions.
  • Designed a MoS2/BiOCl heterojunction to optimize charge separation.
  • Engineered interface to create a built-in electric field.
  • Evaluated performance under aqueous conditions at 20 °C and 420 nm irradiation.
  • Achieved 93% selectivity for pyruvic acid formation at a rate of 3.46 mmol·h ‐1 ·g cat. ‐1.
  • Successfully converted 77.6% of carbon from polylactic acid.
  • Showed a 31.5-fold improvement over BiOCl and a 2.4-fold improvement over MoS2 in product selectivity.

Abstract

Comprehensive Summary To address the critical challenges of inefficient charge separation and uncontrollable selectivity in plastic photocatalytic upcycling, a MoS 2 /BiOCl heterojunction was designed. The precisely engineered interface created a built‐in electric field that enhanced charge separation and optimized the oxidation pathway. Specifically, the moderate oxidation potential of MoS 2 prevents polylactic acid (PLA) mineralization, while the negative conduction band of BiOCl facilitates hydroxyl radicals (·OH) generation via oxygen reduction. The hole and ·OH establish a synergistic dehydrogenation pathway, significantly boosting both reaction rate and product selectivity. The band structure modulation induced by the interface engineering reduces the free energy change for the lactic acid in the key dehydrogenation step from +0.29 eV to –0.13 eV, turning an endergonic into a spontaneous process. Under aqueous conditions at 20 °C, the optimized catalyst exhibits 93% selectivity for pyruvic acid formation at a remarkable rate of 3.46 mmol·h ‐1 ·g cat. ‐1 , outperforming BiOCl and MoS 2 by up to 31.5‐fold and 2.4‐fold, respectively, ranking it among the forefront of reported non‐noble‐metal photocatalysts. This system achieves a 77.6% carbon conversion, while the apparent quantum efficiency is 0.23% under 420 nm irradiation. This work presents a strategy for high‐selectivity in plastic upcycling under mild conditions, enabling green and precise waste conversion.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69e07e582f7e8953b7cbf5f0https://doi.org/10.1002/cjoc.70544
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