Cultural advice

The Australian National University acknowledges, celebrates and pays our respects to the Ngunnawal and Ngambri people of the Canberra region and to all First Nations Australians on whose traditional lands we meet and work, and whose cultures are among the oldest continuing cultures in human history.

Aboriginal and Torres Strait Islander peoples are advised that ANU Library collections may include images, names, voices, and other representations of deceased persons.

Material in the collection may contain terms, language or views that reflect the period in which the item was created and may be considered inappropriate today.

Hydrate-based H2 storage with porous materials as heterogeneous promoters: state of the art and challenges

dc.contributor.authorChen, Lijinen
dc.contributor.authorTing, Valeska P.en
dc.contributor.authorZhang, Yuxuanen
dc.contributor.authorCoventry, Joeen
dc.contributor.authorRahbari, Alirezaen
dc.contributor.authorYin, Zhenyuanen
dc.contributor.authorWang, Feien
dc.contributor.authorTian, Mien
dc.contributor.authorRochat, Sebastienen
dc.contributor.authorZhang, Zhongbinen
dc.contributor.authorDeng, Shuaien
dc.contributor.authorKrebsz, Melindaen
dc.contributor.authorBhomick, Parimalen
dc.contributor.authorWang, Xiaolinen
dc.date.accessioned2025-12-16T21:41:08Z
dc.date.available2025-12-16T21:41:08Z
dc.date.issued2025en
dc.description.abstractClathrate hydrates, which can store hydrogen inside crystalline, ice-like structures, have great potential for hydrogen storage. However, kinetic and thermodynamic promoters are often needed to improve the formation rates and stability ranges. Porous materials exhibit significant potential for hydrate-based hydrogen storage by modulating the kinetics, stability, and storage capacity, unlocking substantial application prospects. This review systematically elucidates the critical mechanisms through which porous materials influence hydrogen hydrate behavior, with a comprehensive analysis of the synergistic roles of material properties and engineering operation conditions. Material properties include the nano-confinement effect, which markedly enhances hydrate formation, optimized pore and particle sizes that increase contact area, functionalized surfaces and rough structures that improve nucleation and stability, and moderate hydrophobicity that enhances gas-water contact. Engineering operation conditions involve maintaining suitable temperatures and pressures to ensure stable hydrate formation, uniform spatial layouts to optimize gas diffusion, and water saturation control to boost reaction efficiency. The review further summarizes the application characteristics of various porous materials, including carbon-based materials (e.g. activated carbon), inorganic materials (e.g. silica), organic porous polymers (e.g. polyurethane foam), and hybrid materials (e.g. metal-organic frameworks), evaluating their respective strengths, limitations and suitability. Multiscale insights highlight the macroscopic focus on hydrate formation within high-pressure reactors, the mesoscopic emphasis on optimizing particle surface reactions, and the microscopic attention to confined hydrate growth within pore structures. Future research should prioritize the refinement of nanopore architectures, the development of advanced hydrophilic/hydrophobic materials, the enhancement of reactor designs, and the integration of thermal management and kinetic optimization to propel hydrogen hydrate storage technology toward practical implementation.en
dc.description.sponsorshipThis project is funded by the Australian Renewable Energy Agency (Project number: 2023/TRAC733 (PRO-1050)). Dr Xiaolin Wang is the recipient of an Australian Research Council Discovery Early Career Researcher Award (Project number: DE200100326) funded by the Australian Government.en
dc.description.statusPeer-revieweden
dc.format.extent49en
dc.identifier.issn2050-7488en
dc.identifier.otherWOS:001534158600001en
dc.identifier.otherORCID:/0000-0003-3049-0939/work/189725213en
dc.identifier.otherORCID:/0000-0003-4020-3980/work/189725236en
dc.identifier.otherORCID:/0000-0001-9217-2210/work/189727237en
dc.identifier.otherORCID:/0009-0007-2328-5976/work/189733125en
dc.identifier.otherORCID:/0000-0001-9961-6988/work/208943082en
dc.identifier.otherORCID:/0000-0001-5579-5574/work/208944601en
dc.identifier.scopus105013686620en
dc.identifier.urihttps://hdl.handle.net/1885/733795640
dc.language.isoenen
dc.rights© The Royal Society of Chemistry 2025en
dc.sourceJournal of Materials Chemistry Aen
dc.subjectMetal-organic frameworksen
dc.subjectReversible hydrogen storageen
dc.subjectA-type zeoliteen
dc.subjectMethane hydrateen
dc.subjectClathrate hydrateen
dc.subjectGas hydrateen
dc.subjectThermodynamic propertiesen
dc.subjectRaman-spectroscopyen
dc.subjectActivated carbonsen
dc.subjectMarine-sedimentsen
dc.titleHydrate-based H2 storage with porous materials as heterogeneous promoters: state of the art and challengesen
dc.typeJournal articleen
dspace.entity.typePublicationen
local.bibliographicCitation.lastpage49en
local.bibliographicCitation.startpage1en
local.contributor.affiliationChen, Lijin; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationTing, Valeska P.; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationZhang, Yuxuan; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationCoventry, Joe; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationRahbari, Alireza; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationYin, Zhenyuan; Tsinghua Universityen
local.contributor.affiliationWang, Fei; Qingdao University of Science & Technologyen
local.contributor.affiliationTian, Mi; University of Bathen
local.contributor.affiliationRochat, Sebastien; University of Bristolen
local.contributor.affiliationZhang, Zhongbin; Nanjing Normal Universityen
local.contributor.affiliationDeng, Shuai; Tianjin Universityen
local.contributor.affiliationKrebsz, Melinda; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.contributor.affiliationBhomick, Parimal; Chemistry Research, Research School of Chemistry, ANU College of Science and Medicine, The Australian National Universityen
local.contributor.affiliationWang, Xiaolin; School of Engineering, ANU College of Systems and Society, The Australian National Universityen
local.identifier.doi10.1039/d5ta04503gen
local.identifier.purec3fa577d-a4c4-494e-ab45-c84fb5af09ecen
local.identifier.urlhttps://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=anu_research_portal_plus2&SrcAuth=WosAPI&KeyUT=WOS:001534158600001&DestLinkType=FullRecord&DestApp=WOS_CPLen
local.type.statusPublisheden

Downloads