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January 23, 2026Nature Communications13 citationsOpen Access

Glycine photosynthesis via C−N coupling of waste plastic and nitrate over diatomic Pd−B catalyst

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YSYan ShenMLMei LiDFDonglong Fu

Key Points

  • The research aims to enhance glycine yield and selectivity through a controlled C-N coupling process.
  • Utilized a Pd-B diatomic catalyst for the reaction.
  • Investigated the photocatalytic coupling of ethylene glycol and nitrate.
  • Measured glycine yield and selectivity under specific reaction conditions.
  • Conducted mechanistic studies to understand the reaction pathway.
  • Achieved a glycine yield of 2.9 mmol g<sub>cat</sub><sup>-1</sup> h<sup>-1</sup> with a selectivity of 92%.
  • Demonstrated photo-oxidation of ethylene glycol to glycolaldehyde at the B site of the catalyst.
  • Revealed a favorable C-N coupling pathway due to better stabilization of the glycolaldehyde intermediate.

Abstract

Photocatalytic C-N coupling offers a promising approach for the sustainable production of amino acids, but the uncontrolled coupling pathway of reaction intermediates limits yield and selectivity. This paper describes a Pd-B diatomic catalyst that can selectively catalyze the photosynthesis of glycine via C-N coupling reaction between waste poly(ethylene terephthalate)-derived ethylene glycol and nitrate, achieving a glycine yield of 2.9 mmol gcat-1 h-1 with a selectivity of 92%. Mechanistic investigations reveal that ethylene glycol is photo-oxidized to glycolaldehyde at the hole-rich B site, while nitrate is photo-reduced to NH4+/NH3 at the electron-rich Pd site. Subsequently, glycolaldehyde undergoes C-N coupling with NH4+/NH3, and further photo-oxidized to form glycine. The Pd-B diatomic site more effectively stabilizes the glycolaldehyde intermediate, resulting in a more favorable C-N coupling pathway than metal oxide and enhancing glycine selectivity. Thus, we show a catalytic system for selective glycine photosynthesis by precisely regulating the reaction pathways of key intermediates.

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Cite This Study

Shen et al. (2026) studied this question.

synapsesocial.com/papers/69730f18c8125b09b0d1ee03https://doi.org/10.1038/s41467-026-68666-z
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