光催化
化学
硝酸盐
异质结
离解(化学)
动力学
质子
光化学
催化作用
量子产额
无机化学
氧化还原
速率决定步骤
化学工程
反应机理
降级(电信)
反应中间体
化学动力学
量子效率
产量(工程)
作者
Yamin Xi,Shunqiong Long,Jing Wang,Chaoqi Zhang,Tianxiang Wang,Tong Bao,Suzhao Liu,Yingying Zou,Yuye Zhao,Chengzhong Yu,Chao Liu
摘要
ABSTRACT Photocatalytic nitrate reduction reaction (NitRR) represents a sustainable approach to convert nitrate pollutants to valuable NH 3 . However, the performance of state‐of‐the‐art photocatalysts is hampered by insufficient near‐infrared (NIR) light utilization and sluggish kinetics of hydrogenation steps and coupled water‐oxygen reaction (WOR). Herein, we report a NIR‐response S‐scheme heterojunction photocatalyst with engineered triple‐active sites for NH 3 production. The integration of narrow‐bandgap CuS and Co‐based metal–organic framework (Co‐MOF) into an S‐scheme heterojunction enhances the NIR light harvesting and charge separation. At the heterointerface, the Cu and Co sites drive WOR and NitRR, respectively. Acting as a dynamic proton relay, the bridging S sites capture protons from H 2 O to facilitate its dissociation at Cu sites and sequentially transport the protons to Co sites to promote the hydrogenation steps. The synergy of Cu, S, and Co sites thereby induces an interfacial dynamic proton transfer mechanism for balancing the kinetics of the two coupled reactions. Taken together, an NH 3 production rate of 5750.06 µmol g −1 h −1 is achieved with an apparent quantum yield of 13.27% at 600 nm and 11.63% at 1000 nm, and a solar‐to‐chemical conversion efficiency of 0.11%. This work provides valuable perspectives into the design principles of advanced nitrate reduction photocatalysts.
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