Direct ammonia solid-oxide fuel cells: A review of progress and prospects

被引:206
作者
Rathore, Shambhu Singh [1 ]
Biswas, Saheli [2 ]
Fini, Daniel [1 ]
Kulkarni, Aniruddha P. [1 ]
Giddey, Sarbjit [1 ]
机构
[1] CSIRO Energy, Private Bag 10, Clayton, Vic 3169, Australia
[2] Monash Univ, Dept Chem Engn, Melbourne, Vic, Australia
关键词
SOFC; Ammonia; Gas to power; Renewable energy; Fuel cell; Hydrogen; ON-SITE GENERATION; CEO2 CERMET ANODES; NI-YSZ ANODE; HYDROGEN-PRODUCTION; NH3; DECOMPOSITION; CONDUCTING ELECTROLYTE; THERMODYNAMIC ANALYSIS; ELECTROCHEMICAL MODEL; CATALYTIC-PROPERTIES; NUMERICAL-ANALYSIS;
D O I
10.1016/j.ijhydene.2021.08.092
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070305 [高分子化学与物理];
摘要
With the rapidly declining cost of renewable energy, efficient ways are needed for its transportation between different regions. Hydrogen is becoming a major energy vector, with the key challenges of its storage and transportation commonly overcome by using ammonia for chemical storage of hydrogen energy. Ammonia, which is more energy dense than hydrogen and easier to transport, is a carbon-free alternative fuel that can be used in a variety of ways to generate power. Owing to their robustness and efficiency, solid-oxide fuel cells (SOFC) stand out as one of the most promising technologies that convert ammonia to electricity. Unlike other fuel cells, such as polymer electrolyte membranes, SOFCs do not require the fuel to be cleaned by energy-intensive external cracking and extensive cleaning; their high operating temperature provides the flexibility to crack the ammonia inside the anode or to use it directly. Here, we discuss experimental and numerical studies of ammonia SOFCs and critically review the status and opportunities for ammonia-fuelled SOFC technology. In the first section, we briefly outline the potential cathode and electrolyte materials for SOFCs. Only the anode component poses additional challenges with ammonia over the well-established hydrogen-fuelled SOFC technology, and this topic has been addressed in detail. Anode catalysts for ammonia decomposition, parameters affecting ammonia decomposition and anode catalyst degradation are also discussed. In the second section, we review the modelling studies for ammonia SOFCs. Finally, we run through the major commercial initiatives and demonstrations in green ammonia production and ammonia SOFCs. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:35365 / 35384
页数:20
相关论文
共 136 条
[1]
AFC Energy, 2019, FUEL CELL B, V2019, P11
[2]
Ammonia-fed fuel cells: a comprehensive review [J].
Afif, Ahmed ;
Radenahmad, Nikdalila ;
Cheok, Quentin ;
Shams, Shahriar ;
Kim, Jung H. ;
Azad, Abul K. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 60 :822-835
[3]
Latest development of double perovskite electrode materials for solid oxide fuel cells: a review [J].
Afroze, Shammya ;
Karim, AfizulHakem ;
Cheok, Quentin ;
Eriksson, Sten ;
Azad, Abul K. .
FRONTIERS IN ENERGY, 2019, 13 (04) :770-797
[4]
The Mechanism of Ammonia Oxidation at Ni-Fe-SDC Anode in Ammonia-Fueled SOFCs [J].
Akimoto, Wataru ;
Saito, Morihiro ;
Inaba, Minoru ;
Yoshida, Hiroyuki ;
Inagaki, Toru .
SOLID OXIDE FUEL CELLS 13 (SOFC-XIII), 2013, 57 (01) :1639-1645
[5]
Ni-Fe/Sm-doped CeO2 anode for ammonia-fueled solid oxide fuel cells [J].
Akimoto, Wataru ;
Fujimoto, Tadashi ;
Saito, Morihiro ;
Inaba, Minoru ;
Yoshida, Hiroyuki ;
Inagaki, Toru .
SOLID STATE IONICS, 2014, 256 :1-4
[6]
[Anonymous], 2019, Fuel Cell Bull, V2019, P7, DOI [10.1016/S1464-2859(19)30147-6, DOI 10.1016/S1464-2859(19)30147-6]
[7]
[Anonymous], 2019, FUEL CELL B, V2019, P6
[8]
[Anonymous], 2019, REP STAT SOL OX FUEL, P16
[9]
Advanced anodes for high-temperature fuel cells [J].
Atkinson, A ;
Barnett, S ;
Gorte, RJ ;
Irvine, JTS ;
Mcevoy, AJ ;
Mogensen, M ;
Singhal, SC ;
Vohs, J .
NATURE MATERIALS, 2004, 3 (01) :17-27
[10]
Review of composite cathodes for intermediate-temperature solid oxide fuel cell applications [J].
Aziz, Azreen Junaida Abd ;
Baharuddin, Nurul Akidah ;
Somalu, Mahendra Rao ;
Muchtar, Andanastuti .
CERAMICS INTERNATIONAL, 2020, 46 (15) :23314-23325