Construction of a gold-cobalt alloy catalyst to enhance the green reduction of carbon dioxide

被引:4
作者
Zhou, Yuheng [1 ]
Wang, Xiaohui [1 ]
Huang, Xubo [2 ]
Deng, Hui [1 ]
Hu, Yuntao [3 ]
机构
[1] Sinopec Res Inst Petr Engn, Sci & Technol Res & Dev Ctr, Beijing 100000, Peoples R China
[2] Zhejiang Univ, Dept Chem, Key Lab Appl Chem Zhejiang Prov, Hangzhou 310027, Peoples R China
[3] Lawrence Berkeley Natl Lab, Environm Genom & Syst Biol, Berkeley, CA 94720 USA
基金
奥地利科学基金会;
关键词
Au-Co alloy; CO2; reduction; Benzyl alcohol; Photothermal catalysis; Hydrogen-free reaction; CO2; REDUCTION; OXIDATION; PHOTOCATALYST; CHEMICALS; NITRIDE; SURFACE; WATER;
D O I
10.1016/j.jcou.2022.102245
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Facilitating carbon neutrality to mitigate the greenhouse effect by an efficient means has great environmental and social value. In this research, the Au-Co catalyst is synthesized with a developed non-aqueous solvent strategy. By tuning the ratio of the bimetallic composition, it represents a prominent catalytic activity in the reduction of CO2 with benzyl alcohol as the hydrogen donor. By means of the anaerobic oxidation of benzyl alcohol, CO2 can be reduced to methanol as well as methyl benzoate as the main product with a high turnover frequency (1079 h(-1)) at 220 degrees C. Taking advantage of a series of characterizations and DFT calculation, it is revealed that the catalytic system constructed in this research promotes the adsorption and activation of CO2. These results demonstrate a feasible route to develop hydrogen-free utilization of CO2 to achieve environmental carbon neutrality in the future.
引用
收藏
页数:9
相关论文
共 39 条
[1]   Identification of a Pt3Co Surface Intermetallic Alloy in Pt-Co Propane Dehydrogenation Catalysts [J].
Cesar, Laryssa Goncalves ;
Yang, Ce ;
Lu, Zheng ;
Ren, Yang ;
Zhang, Guanghui ;
Miller, Jeffrey T. .
ACS CATALYSIS, 2019, 9 (06) :5231-5244
[2]   Carbon neutrality: Toward a sustainable future [J].
Chen, Jing M. .
INNOVATION, 2021, 2 (03)
[3]   Photocatalytic strategies for the activation of organic chlorides [J].
Cybularczyk-Cecotka, Martyna ;
Szczepanik, Joanna ;
Giedyk, Maciej .
NATURE CATALYSIS, 2020, 3 (11) :872-886
[4]   Core-shell structured catalysts for thermocatalytic, photocatalytic, and electrocatalytic conversion of CO2 [J].
Das, Sonali ;
Perez-Ramirez, Javier ;
Gong, Jinlong ;
Dewangan, Nikita ;
Hidajat, Kus ;
Gates, Bruce C. ;
Kawi, Sibudjing .
CHEMICAL SOCIETY REVIEWS, 2020, 49 (10) :2937-3004
[5]   Production of syngas by CO2 reduction through Reverse Water-Gas Shift (RWGS) over catalytically-active molybdenum-based carbide, nitride and composite nanowires [J].
Dasireddy, Venkata D. B. C. ;
Vengust, Damjan ;
Likozar, Blaz ;
Kovac, Janez ;
Mrzel, Ales .
RENEWABLE ENERGY, 2021, 176 :251-261
[6]   Thermo-photo catalysis: a whole greater than the sum of its parts [J].
Fang, Siyuan ;
Hu, Yun Hang .
CHEMICAL SOCIETY REVIEWS, 2022, 51 (09) :3609-3647
[7]   Accurate Single-Molecule Kinetic Isotope Effects [J].
Guo, Yilin ;
Yang, Chen ;
Li, Huiping ;
Zhang, Lei ;
Zhou, Shuyao ;
Zhu, Xin ;
Fu, Huanyan ;
Li, Zhizhou ;
Liu, Zhirong ;
Jia, Chuancheng ;
Liu, Zitong ;
Zhu, Wenguang ;
Mo, Fanyang ;
Zhang, Deqing ;
Guo, Xuefeng .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2022, 144 (07) :3146-3153
[8]   Merging Visible Light Photoredox and Gold Catalysis [J].
Hopkinson, Matthew N. ;
Tlahuext-Aca, Adrian ;
Glorius, Frank .
ACCOUNTS OF CHEMICAL RESEARCH, 2016, 49 (10) :2261-2272
[9]  
Huang CJ, 2001, CHINESE CHEM LETT, V12, P249
[10]   Effects of Au Loading and CO2 Addition on Photocatalytic Selective Phenol Oxidation over TiO2-Supported Au Nanoparticles [J].
Ide, Yusuke ;
Ogino, Ryo ;
Sadakane, Masahiro ;
Sano, Tsuneji .
CHEMCATCHEM, 2013, 5 (03) :766-773