Spatiotemporal Dual-Catalysis Driving Sustained Radical Evolution for Tetramethylpyrazine Synthesis Under Mild Conditions

Abstract Efficient synthesis of tetramethylpyrazine (TMP) under mild conditions remains a challenge in green catalytic engineering. Herein, a ternary synergistic catalytic system is constructed to achieve highly efficient TMP production. The system achieves sustained generation of hydroxyl radicals (·OH) via epigallocatechin gallate (EGCG)-mediated Fe(III)/Fe(II) redox cycling and the weakly acidic condition provided by slightly acidic electrolyzed water (SAEW). Notably, tert-butanol (TBA) quenching inhibited TMP production by 85.49% at 10 min, confirming ·OH as the dominant reactive species initially. Density functional theory (DFT) calculations show that ·OH-driven acetoin oxidation proceeds with an exceptionally low activation barrier, predominantly yielding 2,3-butanedione via hydrogen abstraction. Multispectroscopic analyses suggested that ·OH-mediated radical pathways involved not only acetoin oxidation but potentially also the key dehydrogenation step during TMP formation from dihydropyrazine. In summary, the ternary system not only achieved a TMP yield of 16.97 g/L (240 min) but also improved the crystal morphology. This work establishes a radical-regulated oxidation–condensation coupling mechanism, which provides a green and efficient catalytic strategy for the synthesis of high-value N-heterocycles under mild conditions and shows considerable potential for scalable chemical manufacturing.

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Journal
ACS Sustainable Chemistry & Engineering
Published
2026-09-18
DOI
https://doi.org/10.1021/acssuschemeng.6c07386
Primary Topic
Radical Photochemical Reactions
Type
article
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article

Spatiotemporal Dual-Catalysis Driving Sustained Radical Evolution for Tetramethylpyrazine Synthesis Under Mild Conditions

Yingtong Tang, Jicheng Chen, Rui Hai Liu, Qunna Yang et al.
ACS Sustainable Chemistry & Engineering
Radical Photochemical Reactions
article

Spatiotemporal Dual-Catalysis Driving Sustained Radical Evolution for Tetramethylpyrazine Synthesis Under Mild Conditions

Yingtong Tang, Jicheng Chen, Rui Hai Liu, Qunna Yang, Changrong Wang, Zhizhi Yang
article en

Abstract

Abstract Efficient synthesis of tetramethylpyrazine (TMP) under mild conditions remains a challenge in green catalytic engineering. Herein, a ternary synergistic catalytic system is constructed to achieve highly efficient TMP production. The system achieves sustained generation of hydroxyl radicals (·OH) via epigallocatechin gallate (EGCG)-mediated Fe(III)/Fe(II) redox cycling and the weakly acidic condition provided by slightly acidic electrolyzed water (SAEW). Notably, tert-butanol (TBA) quenching inhibited TMP production by 85.49% at 10 min, confirming ·OH as the dominant reactive species initially. Density functional theory (DFT) calculations show that ·OH-driven acetoin oxidation proceeds with an exceptionally low activation barrier, predominantly yielding 2,3-butanedione via hydrogen abstraction. Multispectroscopic analyses suggested that ·OH-mediated radical pathways involved not only acetoin oxidation but potentially also the key dehydrogenation step during TMP formation from dihydropyrazine. In summary, the ternary system not only achieved a TMP yield of 16.97 g/L (240 min) but also improved the crystal morphology. This work establishes a radical-regulated oxidation–condensation coupling mechanism, which provides a green and efficient catalytic strategy for the synthesis of high-value N-heterocycles under mild conditions and shows considerable potential for scalable chemical manufacturing.

ACS Sustainable Chemistry & Engineering
Cornell University (US), Fujian Agriculture and Forestry University (CN)
Openalex Percentile: Top 21%
Radical Photochemical Reactions
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Spatiotemporal Dual-Catalysis Driving Sustained Radical Evolution for Tetramethylpyrazine Synthesis Under Mild Conditions — Yingtong Tang, Jicheng Chen, et al. · ACS Sustainable Chemistry & Engineering (2026) | TGRS Research Map | TGRS