催化作用
双金属片
光催化
材料科学
甲烷化
碱金属
化学工程
X射线光电子能谱
金属
纳米技术
化学
冶金
生物化学
工程类
有机化学
作者
Xiaolei Guo,Yuqi Wu,Shengrong Zhou,Yuhang Shao,Yasuo Izumi,Jinlu He,Hongwei Zhang
标识
DOI:10.1002/advs.202509454
摘要
Abstract Efficient photocatalytic conversion of CO 2 into CH 4 is crucial yet challenging due to the complex multi‐electron transfer processes and sluggish intermediate transformation. Herein, an innovative strategy is introduced to dramatically enhance photocatalytic CO 2 methanation by constructing interfacial alkali‐metal bridges (Na inter ) between Ni and Ru nanoparticles over ZrO 2 surface. By selectively introducing and subsequently removing excessive surface Na species, stable interfacial Na species are retained, forming a distinctive Ni 0 ─Ni δ+ ─Na inter ─O─Ru electronic bridge. Comprehensive structural and electronic characterizations (XRD, TEM, XAFS, XPS, DRIFTS) demonstrate that the interfacial Na bridge significantly improves electronic communication between Ni and Ru, enhances charge separation efficiency, optimizes CO 2 adsorption, and lowers activation barriers for key intermediates. As a result, the optimized catalyst (0.2Na─Ni─Ru/ZrO 2 ) achieves an exceptionally high CH 4 production rate of 1882.7 µmol·g −1 ·h −1 , ≈15‐fold that of the Na‐free catalyst, with excellent stability and durability. DFT calculations reveal that the Na inter site effectively stabilizes reactive intermediates, greatly accelerating formate to CO conversion and reshaping the reaction pathway. This work highlights alkali‐metal‐mediated interfacial engineering as a versatile approach to enhance the synergy in multi‐component catalysts, opening a new avenue for advanced photocatalytic CO 2 reduction.
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