催化作用
脱氢
甲醇
制氢
选择性
纳米颗粒
化学工程
蒸汽重整
氢
离解(化学)
化学
材料科学
无机化学
热液循环
工业催化剂
原位
多相催化
水热合成
表征(材料科学)
催化剂载体
纳米技术
作者
Wenjie Gu,Lin Chen,Zejian Li,Zhiwen Xu,Yuxin Ge,Yongqi Mao,Xinyuan Song,Jiajin Li,Pengxuan Wu,Junwei Liao,Minglei Lu,Tiejun Wang
标识
DOI:10.1021/acsaem.5c04113
摘要
Hydrogen, with its zero-carbon nature, represents an ideal sustainable secondary energy alternative. Despite its promise for the hydrogen economy, the aqueous-phase reforming of methanol (APRM) continues to face the primary challenge of developing efficient and stable catalysts. Herein, we present a Cu-Glu/Al2O3–ZnO catalyst and investigate its structure-performance relationship through various characterization techniques. A unique core–shell structured catalyst is constructed, consisting of carbon-encapsulated nanoparticles (8.6 nm) that are evenly dispersed on an Al2O3–ZnO support. The catalyst exhibits outstanding activity at 210 °C, with a hydrogen production rate of 51.8 μmol/gcat/s, H2 selectivity of 99.95%, and CO selectivity of 0.05%. Furthermore, it demonstrates excellent durability, with no significant deactivation observed over six consecutive reaction cycles under hydrothermal conditions. In situ DRIFTS and characterization reveal that Cu species catalyze both methanol dehydrogenation (*CH3OH → *CH3O → *CH2O → *HCOOH) and water dissociation (*H2O → *H + *OH), which collectively promote efficient H2 production in APRM.
科研通智能强力驱动
Strongly Powered by AbleSci AI