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◆ Journal of Hazardous Materials2026-05-19· Glycolaldehyde

Photochemical C–N coupling via adsorption modulation: Selective synthesis of glycine from waste plastic/biomass-derived polyols and nitrate

Zixuan Zhang, Xue Zhang, Xiaohui Tang, Mei Li, Shuoshuo Wei, Zongyang Ya, Hua Wang, Shengbo Zhang

原始摘要(英文原文)· Original abstract
Photocatalytic C−N coupling from polyols and nitrogen-containing small molecules for glycine synthesis provides an attractive strategy for upgrading of plastic/biomass waste. However, the uncontrolled intermediates coupling challenges the efficient glycine production regarding yield or selectivity. Here we report an In 2 O 3 photocatalyst that can achieve a glycine formation rate of 1.167 mmol g −1 h −1 with 89% selectivity from waste poly(ethylene terephthalate) (PET) plastic-derived ethylene glycol (EG) and nitrate. Mechanism research reveals that EG is photo-oxidized into glycolaldehyde as a key intermediate over In 2 O 3 catalyst, which subsequently undergoes C–N coupling with NH 4 + obtained from nitrate reduction to form glycine. Compared to TiO 2 catalyst, In 2 O 3 can significantly inhibit the over-oxidation process of key intermediates, thereby suppressing the formation of by-product formic acid. This process is also successfully extended to transform real-word PET plastic and biomass-derived polyols into high-value glycine or amide. Techno-economic analysis (TEA) and life cycle assessment (LCA) further confirm the economic viability and environmental benefits of this C–N coupling system. This work provides a sustainable catalytic system for selective glycine photosynthesis by precisely regulating the C–N coupling routes of key intermediates, which achieves synergistic value-added conversion of dual waste streams, effectively alleviating environmental pressures.
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Photochemical C–N coupling via adsorption modulation: Selective synthesis of glycine from waste plastic/biomass-derived polyols and nitrate — 科研速览 Science Skim