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September 10, 2025Nature Communications18 citationsOpen Access

Catalytic refining lignin into toluene over atomically dispersed Cu/Ni dual sites

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XZXin ZhaoCLChangzhi LiJWJie Wen

Key Points

  • The catalyst achieves a remarkable toluene yield of up to 75.7% from β-O-4 model compounds, demonstrating its effectiveness.
  • With a high space-time yield of 33.7 g·gcat-1·h-1, the catalyst displays potential for large-scale applications in continuous processes.
  • The study uncovers the Cα-Cβ bond cleavage pathway as a key mechanism, enhancing the selectivity for lignin refinement.
  • This innovative approach presents a cost-efficient alternative to traditional petroleum-based processes for producing valuable chemicals.

Abstract

Lignin refining still suffers from great challenges of selective depolymerization and cleavage of stubborn C‒C linkages. Here, a robust atomically dispersed Cu/Ni-SA@HNC catalyst is fabricated for super-selective hydrogenolysis of lignin and model compounds via an unusual "preferential Cα-Cβ bond cleavage in β-O-4 linkages" pathway, affording toluene in yield up to 75.7% from β-O-4 model compounds, and up to 33.7 ± 1.6 wt% (nine parallel experiments) from poplar lignin. The catalyst exhibits high stability, and the scale-up potential is demonstrated by the high space-time yield of toluene (33.7 g·gcat-1·h-1) in continuous flow reaction of β-O-4 model compound. The origin of the extraordinary selectivity towards Cα-Cβ bond cleavage rather than C‒O bond cleavage in β-O-4 model compounds is uncovered. This work conquers the major challenges in lignin valorization by using non-noble dual-metal single-atom catalyst, not only showcasing the application perspective of atomically dispersed catalysts in biopolymer refinery, but also providing a cost-efficient, petroleum independent solution to valuable commodity chemicals.

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Cite This Study

Zhao et al. (2025) studied this question.

synapsesocial.com/papers/68c1d23a54b1d3bfb60f80f5https://doi.org/10.1038/s41467-025-63286-5
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