光催化
甲烷
材料科学
甲烷氧化偶联
纳米技术
联轴节(管道)
反应机理
原材料
机制(生物学)
半导体
催化作用
爆炸物
热的
反应中间体
光化学
纳米材料
科技与社会
生化工程
化学物理
碳氢化合物
作者
Di Hu,Yuheng Jiang,Vitaly V. Ordomsky,Bastian Mei,Zhiyong Tang,Andreï Y. Khodakov
摘要
ABSTRACT Methane, the most abundant hydrocarbon resource on Earth, represents a highly attractive and sustainable feedstock for the solar‐driven production of fuels and value‐added chemicals. However, achieving both efficient and selective C 2+ synthesis remains a formidable challenge. The difficulties lie in realizing advanced photocatalytic materials for controlled activation of the thermodynamically stable C─H bonds and directing the complex network of competing reaction pathways toward selective C─C coupling under both oxidative and non‐oxidative conditions. In this review, we systematically elucidate the central scientific challenges associated with photocatalytic methane upgrading to C 2+ products within a unified mechanistic framework that integrates C─H bond activation, formation and evolution of intermediates, C─C coupling, together with their competing overoxidation and coking pathways, while correlating advances in material design and reaction engineering. Furthermore, we highlight the growing importance of multifunctional materials and hybrid systems that integrate photonic excitation with thermal and electrical inputs to overcome the intrinsic kinetic and energetic limitations of conventional methane photocatalysis. At last, it is emphasized that an interdisciplinary map, encompassing material synthesis, semiconductor physics and chemistry, surface science, catalysis, reaction engineering, advanced characterization, and mechanism investigation, is essential for advancing selective and sustainable methane transformation to high‐value C 2+ products.
科研通智能强力驱动
Strongly Powered by AbleSci AI