Bingyang Wang, Yao Zhao, Weihua Chen, Lianchen Zhao, Qian Yang, Jie Ren, Guanglu Wang, Xiaoru Wang
Pyrazine (1,4-diazabenzene) is a privileged nitrogen-containing heterocycle of considerable importance in pharmaceuticals, food flavourings, agrochemicals, and functional materials. Since its first deliberate synthesis in 1908, the methods for pyrazine construction have undergone a remarkable evolution spanning more than a century. This review provides a comprehensive and critically evaluative account of that journey, tracing the development from early classical condensation reactions-namely the α-aminoketone self-condensation (Tutin reaction) and the α-diketone-α-diamine condensation-oxidation-through industrial heterogeneous catalytic systems (copper-chromite, zinc-chromite, and platinum-based catalysts), to the precision functionalisation afforded by palladium-catalysed cross-coupling, and ultimately to the green and sustainable strategies that have emerged over the past fifteen years, including solvent-free, metal-free, electrochemical, amino-acid-based, and biomass-derived methodologies. Distinct from earlier accounts, this review is organised by methodological strategy, with each approach critically assessed for its scope, limitations, and efficiency. The evolutionary logic from conditional construction to precision modification and, finally, to green sustainability is elucidated, together with an outlook on future directions encompassing earth-abundant metal catalysis, biomass feedstock conversion, and emerging applications in optoelectronic and framework materials. By systematically integrating historical perspective with contemporary green chemistry principles, this review serves both as a practical reference for synthetic chemists and as a roadmap for future methodological innovation in pyrazine synthesis.