Recent Advances of Indium Oxide-Based Catalysts for CO2 Hydrogenation to Methanol: Experimental and Theoretical

被引:27
作者
Cai, Dongren [1 ]
Cai, Yanmei [1 ]
Tan, Kok Bing [1 ]
Zhan, Guowu [1 ]
机构
[1] Huaqiao Univ, Integrated Nanocatalysts Inst INCI, Coll Chem Engn, 668 Jimei Ave, Xiamen 361021, Peoples R China
基金
中国国家自然科学基金;
关键词
CO2; hydrogenation; methanol; indium oxide-based catalysts; oxygen vacancies; hydrogen dissociation; SELECTIVE HYDROGENATION; REFORMING ACTIVITY; DIMETHYL ETHER; OXYGEN; NANOCATALYSTS; IN2O3; CU; DEACTIVATION; ADSORPTION; MECHANISM;
D O I
10.3390/ma16072803
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Methanol synthesis from the hydrogenation of carbon dioxide (CO2) with green H-2 has been proven as a promising method for CO2 utilization. Among the various catalysts, indium oxide (In2O3)-based catalysts received tremendous research interest due to the excellent methanol selectivity with appreciable CO2 conversion. Herein, the recent experimental and theoretical studies on In2O3-based catalysts for thermochemical CO2 hydrogenation to methanol were systematically reviewed. It can be found that a variety of steps, such as the synthesis method and pretreatment conditions, were taken to promote the formation of oxygen vacancies on the In2O3 surface, which can inhibit side reactions to ensure the highly selective conversion of CO2 into methanol. The catalytic mechanism involving the formate pathway or carboxyl pathway over In2O3 was comprehensively explored by kinetic studies, in situ and ex situ characterizations, and density functional theory calculations, mostly demonstrating that the formate pathway was extremely significant for methanol production. Additionally, based on the cognition of the In2O3 active site and the reaction path of CO2 hydrogenation over In2O3, strategies were adopted to improve the catalytic performance, including (i) metal doping to enhance the adsorption and dissociation of hydrogen, improve the ability of hydrogen spillover, and form a special metal-In2O3 interface, and (ii) hybrid with other metal oxides to improve the dispersion of In2O3, enhance CO2 adsorption capacity, and stabilize the key intermediates. Lastly, some suggestions in future research were proposed to enhance the catalytic activity of In2O3-based catalysts for methanol production. The present review is helpful for researchers to have an explicit version of the research status of In2O3-based catalysts for CO2 hydrogenation to methanol and the design direction of next-generation catalysts.
引用
收藏
页数:22
相关论文
共 106 条
[41]   Nickel phyllosilicates functionalized with graphene oxide to boost CO selectivity in CO2 hydrogenation [J].
Liu, Sihan ;
Song, Miaomiao ;
Cha, Xingwen ;
Hu, Siyuan ;
Cai, Dongren ;
Li, Wen ;
Zhan, Guowu .
SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 287
[42]   Challenges and opportunities for carbon neutrality in China [J].
Liu, Zhu ;
Deng, Zhu ;
He, Gang ;
Wang, Hailin ;
Zhang, Xian ;
Lin, Jiang ;
Qi, Ye ;
Liang, Xi .
NATURE REVIEWS EARTH & ENVIRONMENT, 2022, 3 (02) :141-155
[43]   Novel methanol steam reforming activity and selectivity of pure In2O3 [J].
Lorenz, Harald ;
Jochum, Wilfrid ;
Kloetzer, Bernhard ;
Stoeger-Pollach, Michael ;
Schwarz, Sabine ;
Pfaller, Kristian ;
Penner, Simon .
APPLIED CATALYSIS A-GENERAL, 2008, 347 (01) :34-42
[44]   Indium Oxide as a Superior Catalyst for Methanol Synthesis by CO2 Hydrogenation [J].
Martin, Oliver ;
Martin, Antonio J. ;
Mondelli, Cecilia ;
Mitchell, Sharon ;
Segawa, Takuya F. ;
Hauert, Roland ;
Drouilly, Charlotte ;
Curulla-Ferre, Daniel ;
Perez-Ramirez, Javier .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (21) :6261-6265
[45]   Catalytic consequences of Ga promotion on Cu for CO2 hydrogenation to methanol [J].
Medina, Juan C. ;
Figueroa, Manuel ;
Manrique, Raydel ;
Rodriguez Pereira, Jhonatan ;
Srinivasan, Priya D. ;
Bravo-Saurez, Juan J. ;
Baldovino Medrano, Victor G. ;
Jimenez, Romel ;
Karelovic, Alejandro .
CATALYSIS SCIENCE & TECHNOLOGY, 2017, 7 (15) :3375-3387
[46]   Highly dispersed Pt-based catalysts for selective CO2 hydrogenation to methanol at atmospheric pressure [J].
Men, Yu-Long ;
Liu, Yi ;
Wang, Qianqian ;
Luo, Zheng-Hong ;
Shao, Shuai ;
Li, Yi-Bao ;
Pan, Yun-Xiang .
CHEMICAL ENGINEERING SCIENCE, 2019, 200 :167-175
[47]   Flexible Carbon Capture and Utilization technologies in future energy systems and the utilization pathways of captured CO2 [J].
Mikulcic, Hrvoje ;
Skov, Iva Ridjan ;
Dominkovic, Dominik Franjo ;
Alwi, Sharifah Rafidah Wan ;
Manan, Zainuddin Abdul ;
Tan, Raymond ;
Duic, Neven ;
Mohamad, Siti Nur Hidayah ;
Wang, Xuebin .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2019, 114
[48]   Cu-Based Nanocatalysts for CO2 Hydrogenation to Methanol [J].
Murthy, Pradeep S. ;
Liang, Weibin ;
Jiang, Yijiao ;
Huang, Jun .
ENERGY & FUELS, 2021, 35 (10) :8558-8584
[49]   CO2 hydrogenation to methanol at high reaction temperatures over In2O3/ ZrO2 catalysts: Influence of calcination temperatures of ZrO2 support [J].
Numpilai, Thanapha ;
Kidkhunthod, Pinit ;
Cheng, Chin Kui ;
Wattanakit, Chularat ;
Chareonpanich, Metta ;
Limtrakul, Jumras ;
Witoon, Thongthai .
CATALYSIS TODAY, 2021, 375 :298-306
[50]   Optimizing Pd:Zn molar ratio in PdZn/CeO2 for CO2 hydrogenation to methanol [J].
Ojelade, Opeyemi A. ;
Zaman, Sharif F. ;
Daous, Muhammad A. ;
Al-Zahrani, Abdulrahim A. ;
Malik, Ali S. ;
Driss, Hafedh ;
Shterk, Genrikh ;
Gascon, Jorge .
APPLIED CATALYSIS A-GENERAL, 2019, 584