Methane dry reforming: A catalyst challenge awaits

被引:5
|
作者
Nguyen, Dang Le Tri [1 ,2 ]
Tran, Anh Vy [3 ,4 ]
Vo, Dai-Viet N. [4 ]
Nguyen, Ha Tran [5 ]
Rajamohan, Natarajan [6 ]
Trinh, Thanh H. [7 ]
Nguyen, Tuan Loi [8 ,9 ]
V. Le, Quyet [10 ]
Nguyen, Tung M. [11 ]
机构
[1] Van Lang Univ, Inst Computat Sci & Artificial Intelligence, Lab Adv Nanomat & Sustainable Energy Technol, Ho Chi Minh, Vietnam
[2] Van Lang Univ, Fac Appl Technol, Sch Technol, Ho Chi Minh, Vietnam
[3] Aekyung Grp, New Mat Res Team, Aekyung Chem, Seoul, South Korea
[4] Saveetha Inst Med & Tech Sci, Saveetha Med Coll, Ctr Global Hlth Res, Dept Environm Sci, Chennai, India
[5] Vietnam Natl Univ Ho Chi Minh City VNU HCM, Ho Chi Minh City Univ Technol, Natl Key Lab Polymer & Compos Mat, 268 Ly Thuong Kiet,Dist 10, Ho Chi Minh, Vietnam
[6] Sohar Univ, Fac Engn, Chem Engn Sect, Sohar 311, Oman
[7] Ho Chi Minh City Univ Ind & Trade, Fac Food Sci & Technol, 140 Trong Tan St, Ho Chi Minh, Vietnam
[8] Duy Tan Univ, Inst Fundamental & Appl Sci, Ho Chi Minh 70000, Vietnam
[9] Duy Tan Univ, Fac Environm & Chem Engn, Da Nang 55000, Vietnam
[10] Korea Univ, Inst Green Mfg Technol, Dept Mat Sci & Engn, 145 Anam Ro, Seoul 02841, South Korea
[11] Nguyen Tat Thanh Univ, Inst Appl Technol & Sustainable Dev, Ho Chi Minh 755414, Vietnam
关键词
Methane dry reforming; Greenhouse gas; Catalyst design; Coke mitigation; Syngas; NI-PT CATALYSTS; CARBON-DIOXIDE; BIMETALLIC CATALYSTS; SYNGAS PRODUCTION; SYNTHESIS GAS; THERMODYNAMIC ANALYSIS; NI/AL2O3; CATALYSTS; COKE FORMATION; COKING RESISTANCE; PARTIAL OXIDATION;
D O I
10.1016/j.jiec.2024.06.017
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Methane dry reforming (DRM) presents a compelling technology for converting abundant natural gas into valuable syngas, a versatile intermediate for clean fuels and chemicals. However, unlocking the full potential of DRM hinges on overcoming significant catalyst limitations. DRM catalysts often suffer from low activity, selectivity issues, and rapid deactivation caused by carbon deposition. This review comprehensively analyzes the landscape of catalyst development for DRM. We explore the fundamental reaction mechanisms and factors influencing catalyst performance. We then delve into established catalyst materials, highlighting their advantages and limitations. Particular emphasis is placed on promising new materials like metal carbide/phosphide, bimetallic, and promoted catalysts with their exceptional thermal stability, favorable electronic properties, and unique reaction cycles that mitigate coking. This review critically evaluates recent advancements in catalyst design, focusing on strategies to enhance activity, selectivity, and coke resistance. By identifying key research directions and future opportunities, this review aims to guide the development of next-generation catalysts that will render DRM a more viable and sustainable technology.
引用
收藏
页码:169 / 189
页数:21
相关论文
共 50 条
  • [1] Process and catalyst improvements for the dry reforming of methane
    Chaudhary, Puneet Kumar
    Deo, Goutam
    CHEMICAL ENGINEERING SCIENCE, 2023, 276
  • [2] Intensification of dry reforming of methane on membrane catalyst
    Gavrilova, N. N.
    Sapunov, V. N.
    Skudin, V. V.
    CHEMICAL ENGINEERING JOURNAL, 2019, 374 : 983 - 991
  • [3] Catalyst design for dry reforming of methane: Analysis review
    Aramouni, Nicolas Abdel Karim
    Touma, Jad G.
    Abu Tarboush, Belal
    Zeaiter, Joseph
    Ahmad, Mohammad N.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 : 2570 - 2585
  • [4] Multiscale modeling of catalyst deactivation in dry methane reforming
    Nagpal, Satchit
    Lee, Chi Ho
    Sitapure, Niranjan
    Kim, Youngjo
    Gagnon, Zachary
    Kwon, Joseph Sang-II
    Chemical Engineering Journal, 2024, 499
  • [5] Multiscale modeling of catalyst deactivation in dry methane reforming
    Nagpal, Satchit
    Lee, Chi Ho
    Sitapure, Niranjan
    Kim, Youngjo
    Gagnon, Zachary
    Kwon, Joseph Sang-, II
    CHEMICAL ENGINEERING JOURNAL, 2024, 499
  • [6] NiCo as catalyst for magnetically induced dry reforming of methane
    Varsano, F.
    Bellusci, M.
    Provino, A.
    Petrecca, M.
    INTERNATIONAL CONFERENCE ON FUNCTIONAL MATERIALS AND CHEMICAL ENGINEERING (ICFMCE 2017), 2018, 323
  • [7] DFT studies of dry reforming of methane on Ni catalyst
    Zhu, Yi-An
    Chen, De
    Zhou, Xing-Gui
    Yuan, Wei-Kang
    CATALYSIS TODAY, 2009, 148 (3-4) : 260 - 267
  • [8] Nanoporous Nickel Composite Catalyst for the Dry Reforming of Methane
    Fujita, Takeshi
    Peng, Xiaobo
    Yamaguchi, Akira
    Cho, Yohei
    Zhang, Yongzheng
    Higuchi, Kimitaka
    Yamamoto, Yuta
    Tokunaga, Tomoharu
    Arai, Shigeo
    Miyauchi, Masahiro
    Abe, Hideki
    ACS OMEGA, 2018, 3 (12): : 16651 - 16657
  • [9] Limonitic Laterite Ore as a Catalyst for the Dry Reforming of Methane
    Abe, Keisuke
    Saito, Genki
    Nomura, Takahiro
    Akiyama, Tomohiro
    ENERGY & FUELS, 2016, 30 (10) : 8457 - 8462
  • [10] Computational Catalyst Design for Dry Reforming of Methane: A Review
    Yoon, Yeongjun
    You, Hyo Min
    Kim, Hyung Jun
    Curnan, Matthew T.
    Kim, Kyeounghak
    Han, Jeong Woo
    ENERGY & FUELS, 2022, 36 (17) : 9844 - 9865