光催化
催化作用
材料科学
热液循环
吸附
钴
兴奋剂
吸收(声学)
电子转移
化学工程
氢氧化物
氧还原
还原(数学)
纳米技术
可见光谱
氧气
路易斯酸
光化学
氢氧化钴
碳纤维
水热合成
无机化学
析氧
航程(航空)
煅烧
氧还原反应
化学
作者
Pujing Huang,Fang Hu,Yaxin Zheng,Yi Liu,Junkuo Gao
标识
DOI:10.1021/acsanm.6c00462
摘要
Doping engineering offers an effective route to tailoring light harvesting and charge-transfer properties for photocatalytic CO2 reduction. Herein, multiflower-like layered double hydroxide Ni1.5Co1.5Al-LDH assembled from interconnected nanosheets was synthesized via a facile hydrothermal method. The incorporation of an optimal amount of Co2+ and the induction of oxygen vacancies synergistically broaden the visible-light absorption range and accelerate the electron transfer rate. Under visible-light irradiation, Ni1.5Co1.5Al-LDH delivers a CO evolution rate of 761.19 μmol·g–1·h–1, which is 3.9 and 1.5 times higher than those of Ni3Al-LDH and Co3Al-LDH, respectively. Notably, Ni1.5Co1.5Al-LDH preserves the three-dimensional multiflower-like architecture of Ni3Al-LDH, providing accessible catalytic sites and shortening the charge-transport pathways. In addition, abundant vacancies promote the formation of Co2+-VO Lewis acid–base pairs, enhancing CO2 adsorption and thereby contributing to the improved activity.
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