Ammonia to power: Advancing direct ammonia solid oxide fuel cells through experimental and theoretical studies

被引:4
|
作者
Elmutasim, Omer [1 ,2 ]
Giddey, Sarbjit [1 ]
Dhawale, Dattatray S. [1 ]
Bhattacharya, Sankar [2 ]
机构
[1] CSIRO Energy, Private Bag 10, Clayton, Vic 3169, Australia
[2] Monash Univ, Dept Chem & Biol Engn, Clayton, Vic 3800, Australia
关键词
Ammonia; Hydrogen; DA-SOFC; Fuel cells; DFT modeling; Reaction mechanism; CEO2 CERMET ANODES; PERFORMANCE DEGRADATION; HYDROGEN-PRODUCTION; NUMERICAL-ANALYSIS; ENERGY; NI; DECOMPOSITION; ELECTROLYTE; STABILITY; OXIDATION;
D O I
10.1016/j.ijhydene.2024.11.320
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
Achieving net zero emissions by 2050 is an emerging challenge to meet global warming mitigation goals. Ammonia is an outstanding medium for hydrogen storage and a promising carbon-free energy carrier. Furthermore, it presents superiority in storage and transport, which remain critical bottlenecks for hydrogen usage at a broader scale. Direct ammonia solid oxide fuel cells (DA-SOFCs) stand out as a promising technology for converting ammonia to power in a single step, providing a potential decarbonization pathway for several power generation applications currently using fossil fuels. This review aims to present a comprehensive summary of the recent advancements in both experimental and computational facets of DA-SOFC technology. Then, we discuss the various types of DA-SOFCs, all of which are assessed with respect to the materials and process conditions used. The impact of surface modification on DA-SOFC performance via doping of electrolyte and metal infiltration into conventional anode catalysts has also been reviewed. The highest power density of DA-SOFC reported so far is 1330 mW cm(-2) at 650 degrees C, achieved using a very thin electrolyte (similar to 1.1 mu m thick) in a GDC-YSZ-GDC sandwich structure. Realizing the potential of DA-SOFC technology requires overcoming several technological challenges, including nickel nitridation, microstructural deformation, and thermal and chemical strains, highlighted in this review. Though a peltothra of review articles related to DA-SOFC technology are available in the literature, this review focused on elucidating the underlying reaction mechanisms in DA-SOFC at the atomic level using ab initio approaches is lacking despite its significance in designing active cell materials. In this relation, atomistic insights into the reaction mechanisms in DA-SOFCs using density functional theory (DFT) computations have been presented. For instance, DFT computations revealed that the hydrogen spillover from the Ni to Ni-YSZ interface is the most favorable mechanism for H-2 oxidation at the triple phase boundary (TPB) region of Ni/YSZ anode, accounting for an activation barrier of 1.17 eV, whereas hydroxyl and oxygen spillover presented higher kinetic barriers of 2.25 and 1.99 eV, respectively. Finally, this review concludes by discussing the challenges and the future perspectives to advance ammonia SOFC technology to a commercialization level.
引用
收藏
页码:192 / 209
页数:18
相关论文
共 50 条
  • [31] Effects of water on the degradations in the Ni-YSZ anode of the direct ammonia solid oxide fuel cells
    Lee, Hyunho
    Kim, Jinwoo
    Baek, Jaewan
    Kwon, Hyunguk
    Choi, Mingi
    CHEMICAL ENGINEERING JOURNAL, 2024, 497
  • [32] Advanced design strategies for highly efficient and durable anodes in direct ammonia solid oxide fuel cells
    Huang, Hai-Ting
    Lu, Dong-Chu
    Li, Cheng-Xin
    Zhang, Shan-Lin
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 87 : 89 - 99
  • [33] Direct reforming of Methane-Ammonia mixed fuel on Ni-YSZ anode of solid oxide fuel cells
    Teramoto, Katsuyuki
    Iwai, Hiroshi
    Kishimoto, Masashi
    Kawaguchi, Tomohisa
    Takemoto, Masashi
    Saito, Motohiro
    Yoshida, Hideo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (15) : 8965 - 8974
  • [34] Comparative Study of Ammonia-fueled Solid Oxide Fuel Cell Systems
    Okanishi, T.
    Okura, K.
    Srifa, A.
    Muroyama, H.
    Matsui, T.
    Kishimoto, M.
    Saito, M.
    Iwai, H.
    Yoshida, H.
    Saito, M.
    Koide, T.
    Iwai, H.
    Suzuki, S.
    Takahashi, Y.
    Horiuchi, T.
    Yamasaki, H.
    Matsumoto, S.
    Yumoto, S.
    Kubo, H.
    Kawahara, J.
    Okabe, A.
    Kikkawa, Y.
    Isomura, T.
    Eguchi, K.
    FUEL CELLS, 2017, 17 (03) : 383 - 390
  • [35] Direct ammonia proton-conducting solid oxide fuel cells prepared by a modified suspension spray
    Xie, Kui
    Yan, Ruiqiang
    Meng, Guangyao
    Liu, Xingqin
    IONICS, 2009, 15 (01) : 115 - 119
  • [36] A novel integration of a green power-to-ammonia to power system: Reversible solid oxide fuel cell for hydrogen and power production coupled with an ammonia synthesis unit
    Mukelabai, Mulako Dean
    Gillard, Jonathon M.
    Patchigolla, Kumar
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (35) : 18546 - 18556
  • [37] Experimental and numerical investigation of direct ammonia solid oxide fuel cells with the implementation of ammonia decomposition source terms in a 3D finite volume-based model
    Machaj, Krystian
    ENERGY, 2024, 312
  • [38] Solid oxide fuel cells for ammonia synthesis and energy conversion
    Goldstein, Valentina
    Rath, Manasa Kumar
    Kossenko, Alexey
    Litvak, Natali
    Kalashnikov, Alexander
    Zinigrad, Michael
    SUSTAINABLE ENERGY & FUELS, 2022, 6 (20) : 4706 - 4715
  • [39] Bayesian-optimization-assisted efficient operation for direct ammonia solid oxide fuel cells
    Baek, Jaewan
    Kim, Jinwoo
    Lee, Hyunho
    Lee, Minki
    Choi, Mingi
    JOURNAL OF POWER SOURCES, 2024, 619
  • [40] Numerical investigation of a direct ammonia tubular solid oxide fuel cell in comparison with hydrogen
    Ilbas, Mustafa
    Kumuk, Berre
    Alemu, Molla Asmare
    Arslan, Busra
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (60) : 35108 - 35117