Nano-enhanced solid-state hydrogen storage: Balancing discovery and pragmatism for future energy solutions

被引:10
作者
Dun, Chaochao [1 ]
Wang, Xinyi [2 ]
Chen, Linfeng [1 ]
Li, Sichi [3 ]
Breunig, Hanna M. [2 ]
Urban, Jeffrey J. [1 ]
机构
[1] Lawrence Berkeley Natl Lab, Mol Foundry, Berkeley, CA 94720 USA
[2] Lawrence Berkeley Natl Lab, Energy Anal & Environm Impacts Div, Berkeley, CA 94720 USA
[3] Lawrence Livermore Natl Lab, Livermore, CA 94550 USA
关键词
nanomaterials; nanotechnology; solid-state H-2 storage; techno-economic analysis; model-driven material development processes; METAL-ORGANIC FRAMEWORKS; TECHNOECONOMIC ANALYSIS; SYSTEM CHARACTERISTICS; HYDRIDE MATERIALS; COMPLEX HYDRIDES; DESIGN TOOL; PERFORMANCE; CAPACITY; ALLOYS; THERMODYNAMICS;
D O I
10.1007/s12274-024-6876-y
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
Nanomaterials have revolutionized the battery industry by enhancing energy storage capacities and charging speeds, and their application in hydrogen (H-2) storage likewise holds strong potential, though with distinct challenges and mechanisms. H-2 is a crucial future zero-carbon energy vector given its high gravimetric energy density, which far exceeds that of liquid hydrocarbons. However, its low volumetric energy density in gaseous form currently requires storage under high pressure or at low temperature. This review critically examines the current and prospective landscapes of solid-state H-2 storage technologies, with a focus on pragmatic integration of advanced materials such as metal-organic frameworks (MOFs), magnesium-based hybrids, and novel sorbents into future energy networks. These materials, enhanced by nanotechnology, could significantly improve the efficiency and capacity of H-2 storage systems by optimizing H-2 adsorption at the nanoscale and improving the kinetics of H-2 uptake and release. We discuss various H-2 storage mechanisms-physisorption, chemisorption, and the Kubas interaction-analyzing their impact on the energy efficiency and scalability of storage solutions. The review also addresses the potential of "smart MOFs", single-atom catalyst-doped metal hydrides, MXenes and entropy-driven alloys to enhance the performance and broaden the application range of H-2 storage systems, stressing the need for innovative materials and system integration to satisfy future energy demands. High-throughput screening, combined with machine learning algorithms, is noted as a promising approach to identify patterns and predict the behavior of novel materials under various conditions, significantly reducing the time and cost associated with experimental trials. In closing, we discuss the increasing involvement of various companies in solid-state H-2 storage, particularly in prototype vehicles, from a techno-economic perspective. This forward-looking perspective underscores the necessity for ongoing material innovation and system optimization to meet the stringent energy demands and ambitious sustainability targets increasingly in demand.
引用
收藏
页码:8729 / 8753
页数:25
相关论文
共 159 条
[1]   Large-scale stationary hydrogen storage via liquid organic hydrogen carriers [J].
Abdin, Zainul ;
Tang, Chunguang ;
Liu, Yun ;
Catchpole, Kylie .
ISCIENCE, 2021, 24 (09)
[2]   Sorbent material property requirements for on-board hydrogen storage for automotive fuel cell systems [J].
Ahluwalia, R. K. ;
Peng, J. -K. ;
Hua, T. Q. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (19) :6373-6390
[3]   Predicting hydrogen storage in MOFs via machine learning [J].
Ahmed, Alauddin ;
Siegel, Donald J. .
PATTERNS, 2021, 2 (07)
[4]   Exceptional hydrogen storage achieved by screening nearly half a million metal-organic frameworks [J].
Ahmed, Alauddin ;
Seth, Saona ;
Purewal, Justin ;
Wong-Foy, Antek G. ;
Veenstra, Mike ;
Matzger, Adam J. ;
Siegel, Donald J. .
NATURE COMMUNICATIONS, 2019, 10 (1)
[5]   An assessment of strategies for the development of solid-state adsorbents for vehicular hydrogen storage [J].
Allendorf, Mark D. ;
Hulvey, Zeric ;
Gennett, Thomas ;
Ahmed, Alauddin ;
Autrey, Tom ;
Camp, Jeffrey ;
Cho, Eun Seon ;
Furukawa, Hiroyasu ;
Haranczyk, Maciej ;
Head-Gordon, Martin ;
Jeong, Sohee ;
Karkamkar, Abhi ;
Liu, Di-Jia ;
Long, Jeffrey R. ;
Meihaus, Katie R. ;
Nayyar, Iffat H. ;
Nazarov, Roman ;
Siegel, Donald J. ;
Stavila, Vitalie ;
Urban, Jeffrey J. ;
Veccham, Srimukh Prasad ;
Wood, Brandon C. .
ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (10) :2784-2812
[6]   Light metal hydride-based hydrogen storage system: Economic assessment in Argentina [J].
Amica, G. ;
Arneodo Larochette, P. ;
Gennari, F. C. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (38) :18789-18801
[7]   Technoeconomic analysis of metal-organic frameworks for bulk hydrogen transportation [J].
Anastasopoulou, Aikaterini ;
Furukawa, Hiroyasu ;
Barnett, Brandon R. ;
Jiang, Henry Z. H. ;
Long, Jeffrey R. ;
Breunig, Hanna M. .
ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (03) :1083-1094
[8]   Large-scale storage of hydrogen [J].
Andersson, Joakim ;
Gronkvist, Stefan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (23) :11901-11919
[9]   High-capacity hydrogen storage by metallized graphene [J].
Ataca, C. ;
Akturk, E. ;
Ciraci, S. ;
Ustunel, H. .
APPLIED PHYSICS LETTERS, 2008, 93 (04)
[10]   Hydrogen-Stabilized ScYNdGd Medium-Entropy Alloy for Hydrogen Storage [J].
Balcerzak, Mateusz ;
Ponsoni, Jessica Bruna ;
Petersen, Hilke ;
Menendez, Cesar ;
Ternieden, Jan ;
Zhang, Linda ;
Winkelmann, Frederik ;
Aguey-Zinsou, Kondo-Francois ;
Hirscher, Michael ;
Felderhoff, Michael .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2024, 146 (08) :5283-5294