过电位
材料科学
异质结
电化学
催化作用
电场
化学工程
生产(经济)
离子
解吸
法拉第效率
电化学能量转换
电化学电池
工作(物理)
太阳能
光伏系统
析氧
储能
无机化学
纳米技术
电压
可再生能源
太阳能电池
氧化还原
作者
Huan Xie,Yan Zheng,Wenzheng Nie,Linglan Men,Huihui Bao,Yingchun Liu,Chuangwei Liu,J J Liu,Changlei Xia
摘要
ABSTRACT Electrochemical CO 2 reduction (eCO 2 R) to valuable chemicals or fuels offers an effective solution to alleviate the energy crisis and environmental challenges. Reducing the overpotential of a desired product for eCO 2 R is paramount to achieving high energy efficiency. Herein, CuO/In 2 O 3 (Cu 4.2 In 1 ) nanosheets (NSs) p‐n heterojunction with the built‐in electric field which enhances the surficial hydroxyl coverage achieving the greatly decreased overpotential for CO production by eCO 2 R. The Faraday efficiency of CO attains 96.5% under an impressively low overpotential (130 mV), which is one of the lowest among the reported catalysts for CO production. Additionally, the eCO 2 R system integrates with a commercial triple‐junction solar cell exhibiting an average solar‐to‐CO conversion energy efficiency of 7.9%, with the CO production rate of 0.73 mmol h −1 cm −2 . The built‐in electric field between the CuO/In 2 O 3 (Cu 4.2 In 1 ) NSs heterojunction increases the oxidation states of Cu ions (Cu δ+ , δ = 2.14), which enhances the surficial hydroxyl coverage by the strong electrostatic attraction at low overpotentials, consequently stabilizing * COOH intermediate and facilitating the desorption of * CO. This work provides a new solution to achieve energy efficient eCO 2 R by the surficial hydroxyl coverage manipulation.
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