One-step plasma reforming of CO2-CH4 into hydrogen and liquid fuels: The roles of Cu and Fe sites on products distribution

被引:22
作者
Li, Jiangwei [1 ,2 ]
Dou, Liguang [1 ]
Liu, Yadi [1 ]
Gao, Yuan [1 ]
Hu, Xiucui [1 ]
Yu, Feng [2 ]
Li, Jiacong [1 ]
Zhang, Shuai [1 ,3 ]
Shao, Tao [1 ,3 ]
机构
[1] Chinese Acad Sci, Inst Elect Engn, Beijing Int S&T Cooperat Base Plasma Sci & Energy, Beijing 100190, Peoples R China
[2] Shihezi Univ, Sch Chem & Chem Engn, Key Lab Green Proc Chem Engn Xinjiang Bingtuan, Shihezi 832003, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Non-thermal plasma; Plasma-catalysis; CO2; CH4; conversion; Liquid oxygenates; Hydrogen production; Selectivity regulation; METHANE; CO2; PERFORMANCE; RESISTANCE; CATALYSTS; REACTOR; BIOGAS; ARGON; CE;
D O I
10.1016/j.fuproc.2022.107648
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Low-carbon plasma-catalysis technology has shown emerging potential for direct conversion of CO2/CH4 into H2 energy and value-added oxygenates at low temperatures. Nevertheless, how to efficiently regulate the distri-bution of the products and further reveal the catalytic roles of the active sites in plasma-catalysis remains a major challenge. Herein, we exploited 5A zeolite supported catalysts with varied Cu/Fe active sites and further investigated the effects of Ar/H2O additives in this reaction to tune the products distribution. Comprehensive characterization together with the evaluation tests revealed that Cu0 species in Cu/5A was favorable to the formation of CH3OH (18.0%), and Fe2+ in Fe/5A promoted the CH3COOH (7.9%) production. Noted that the addition of Ar greatly enhanced the conversions of CO2 (30.3%) and CH4 (55.6%) and the H2O additive significantly improved the H2 selectivity (56.6%). Upon systemic in-situ DRIFTS and kinetic modelling, the synergistic conversion routes involving the crucial radicals adsorption process over the catalysts surface were proposed. This work provides new insights into the design of highly selective catalysts for tuning the products distribution in the plasma-catalytic co-conversion of CO2/CH4.
引用
收藏
页数:14
相关论文
共 57 条
[1]   Comparative study on the performance of microwave-assisted plasma DRM in nitrogen and argon atmospheres at a low microwave power [J].
Alawi, Nabil Majd ;
Sunarso, Jaka ;
Pham, Gia Hung ;
Barifcani, Ahmed ;
Minh Hoang Nguyen ;
Liu, Shaomin .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2020, 85 :118-129
[2]   Plasma -catalytic dry reforming of methane: Screening of catalytic materials in a coaxial packed -bed DBD reactor [J].
Andersen, J. A. ;
Christensen, J. M. ;
Ostberg, M. ;
Bogaerts, A. ;
Jensen, A. D. .
CHEMICAL ENGINEERING JOURNAL, 2020, 397
[3]   Evidence of new Ni-O-K catalytic sites with superior stability for methane dry reforming [J].
Azancot, Lola ;
Blay, Vincent ;
Blay-Roger, Ruben ;
Bobadilla, Luis F. ;
Penkova, Anna ;
Centeno, Miguel A. ;
Odriozola, Jose A. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2022, 307
[4]   The 2020 plasma catalysis roadmap [J].
Bogaerts, Annemie ;
Tu, Xin ;
Whitehead, J. Christopher ;
Centi, Gabriele ;
Lefferts, Leon ;
Guaitella, Olivier ;
Azzolina-Jury, Federico ;
Kim, Hyun-Ha ;
Murphy, Anthony B. ;
Schneider, William F. ;
Nozaki, Tomohiro ;
Hicks, Jason C. ;
Rousseau, Antoine ;
Thevenet, Frederic ;
Khacef, Ahmed ;
Carreon, Maria .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2020, 53 (44)
[5]   Methane dry reforming over boron nitride interface-confined and LDHs-derived Ni catalysts [J].
Bu, Kankan ;
Kuboon, Sanchai ;
Deng, Jiang ;
Li, Hongrui ;
Yan, Tingting ;
Chen, Guorong ;
Shi, Liyi ;
Zhang, Dengsong .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2019, 252 :86-97
[6]   A promising plasma-catalytic approach towards single-step methane conversion to oxygenates at room temperature [J].
Chawdhury, Piu ;
Wang, Yaolin ;
Ray, Debjyoti ;
Mathieu, Stephanie ;
Wang, Ni ;
Harding, Jonathan ;
Bin, Feng ;
Tu, Xin ;
Subrahmanyam, Ch .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2021, 284
[7]   Dry reforming of methane on bimetallic Pt-Ni@CeO2 catalyst: a in situ DRIFTS-MS mechanistic study [J].
Chen, Huanhao ;
Chansai, Sarayute ;
Xu, Shaojun ;
Xu, Shanshan ;
Mu, Yibing ;
Hardacre, Christopher ;
Fan, Xiaolei .
CATALYSIS SCIENCE & TECHNOLOGY, 2021, 11 (15) :5260-5272
[8]   Plasma-Catalytic Methanol Synthesis from CO2 Hydrogenation over a Supported Cu Cluster Catalyst: Insights into the Reaction Mechanism [J].
Cui, Zhaolun ;
Meng, Shengyan ;
Yi, Yanhui ;
Jafarzadeh, Amin ;
Li, Shangkun ;
Neyts, Erik Cornelis ;
Hao, Yanpeng ;
Li, Licheng ;
Zhang, Xiaoxing ;
Wang, Xinkui ;
Bogaerts, Annemie .
ACS CATALYSIS, 2022, 12 (02) :1326-1337
[9]   Highly active and coke resistant Ni/CeZrO2 catalyst prepared by cold plasma decomposition for CO2 reforming of methane [J].
Dai, Yuxiao ;
Zou, Rui ;
Ba, Teer ;
Zhang, Jie ;
Liu, Chang-jun .
JOURNAL OF CO2 UTILIZATION, 2021, 51 (51)
[10]   Silica-Ceria sandwiched Ni core-shell catalyst for low temperature dry reforming of biogas: Coke resistance and mechanistic insights [J].
Das, S. ;
Ashok, J. ;
Bian, Z. ;
Dewangan, N. ;
Wai, M. H. ;
Du, Y. ;
Borgna, A. ;
Hidajat, K. ;
Kawi, S. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2018, 230 :220-236