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
  • [21] A simple, feasible, and non-hazardous laboratory evaluation of direct ammonia solid oxide fuel cells fueled by aqueous ammonia
    Li, Tian
    Ling, Yihan
    Lin, Bin
    Ou, Xuemei
    Wang, Shaorong
    SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 297
  • [22] Direct utilization of ammonia in intermediate-temperature solid oxide fuel cells
    Ma, Qianli
    Peng, RanRan
    Tian, Longzhang
    Meng, Guangyao
    ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (11) : 1791 - 1795
  • [23] Assessment of ammonia as energy carrier in the use with reversible solid oxide cells
    Zendrini, Michele
    Testi, Matteo
    Trini, Martina
    Daniele, Penchini
    Van Herle, Jan
    Crema, Luigi
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (58) : 30112 - 30123
  • [24] Vanadium (oxy)nitride as a new category of anode for direct ammonia solid oxide fuel cells cells
    Holz, Laura I. V.
    Loureiro, Francisco J. A.
    Graca, Vanessa C. D.
    Mikhalev, Sergey M.
    Mendes, Diogo
    Mendes, Adelio
    Fagg, Duncan P.
    RENEWABLE ENERGY, 2022, 201 : 124 - 130
  • [25] Activating and stabilizing the surface of anode for high-performing direct-ammonia solid oxide fuel cells
    Xu, Kang
    Zhu, Feng
    Hou, Mingyang
    Li, Canan
    Zhang, Hua
    Chen, Yu
    NANO RESEARCH, 2023, 16 (02) : 2454 - 2462
  • [26] Review of direct ammonia solid oxide fuel cells: Low temperature cell structure and ammonia decomposition strategies
    Ya, Yuchen
    Xu, Yi shu
    Elbanna, Ahmed Mohammed
    Liu, Yimin
    Sun, Boyu
    Cheng, Xiaobei
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2025, 213
  • [27] Ammonia as an effective hydrogen carrier and a clean fuel for solid oxide fuel cells
    Wan, Zhijian
    Tao, Youkun
    Shao, Jing
    Zhang, Yinghui
    You, Hengzhi
    ENERGY CONVERSION AND MANAGEMENT, 2021, 228 (228)
  • [28] High performance direct ammonia solid oxide fuel cell
    Fournier, G. G. M.
    Cumming, I. W.
    Hellgardt, K.
    JOURNAL OF POWER SOURCES, 2006, 162 (01) : 198 - 206
  • [29] Comprehensive numerical investigations on direct ammonia-fed planar solid oxide fuel cell
    Aydin, Ozgur
    FUEL, 2024, 378
  • [30] Direct ammonia low-temperature symmetrical solid oxide fuel cells with composite semiconductor electrolyte
    Qian, Jiaqi
    Zhou, Xiaoliang
    Liu, Limin
    Liu, Jing
    Zhao, Luomeng
    Shen, Hanwen
    Hu, Xingguo
    Qian, Xinyuan
    Chen, Hanyu
    Zhou, Xin
    Wei, Zhaohuan
    ELECTROCHEMISTRY COMMUNICATIONS, 2022, 135