DOE OSTI · 3020040
Geologic hydrogen: From natural occurrences to anthropogenic generation – A review of fundamentals, potential, challenges and prospects
Abstract
Growing demand for hydrogen is exposing the environmental and economic limits of reforming-based and carbon-managed supply chains, while the scale-up of electrolytic capacity remains capital-constrained. Geologic hydrogen, defined as molecular H₂ generated and stored within the Earth's crust offers a complementary, potentially lower-cost resource, yet exploration is still ad hoc. This review (1) revisits a global inventory of confirmed hydrogen seeps and subsurface occurrences; (2) analyzes the controlling reactions, migration pathways, and trapping conditions governing these occurrences; (3) proposes a process-based geologic hydrogen system concept analogous to, yet distinct from, the petroleum system; and (4) evaluates potential geologic hydrogen systems within the United States as a representative case study. Here, we contrast natural systems powered by serpentinization, mantle degassing or radiolysis with anthropogenic systems that stimulate the same reactions or convert in-situ hydrocarbons. Stable hydrogen accumulations require generation rates that outpace combined physical, chemical and microbial losses; the Bourakébougou field (Mali) exemplifies a self-recharging, free-gas reservoir sustained by meteoric-water serpentinization beneath an efficient caprock. Prospective geologic hydrogen resources are likely to occur in regions where iron-rich lithologies, deep-seated faults, and low-permeability sealing formations coexist. Applying this principle, we highlight three promising hydrogen play types in U.S. geological terrains: ophiolite belts (Appalachian and Californian regions), the Midcontinent Rift and the Lake Superior banded‑iron formations. Multiphysics numerical models and positive-unlabeled machine-learning workflows help to accelerate play screening and de-risk future production; yet, reaction kinetics, stimulation strategies, and full techno-economic and life-cycle assessments remain pivotal knowledge gaps.
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Liu, Mengwei [National Energy Technology Laboratory (NETL), Morgantown, WV (United States)], Warner, Travis [National Energy Technology Laboratory (NETL), Morgantown, WV (United States)], Zhao, Yumeng [University of Michigan, Ann Arbor, MI (United States)], Xia, Zhao [University of Texas, Austin, TX (United States)], Zhang, Danrong [Georgia Institute of Technology, Atlanta, GA (United States)], Zhan, Peng [King Abdullah University of Science and Technology (KAUST), Thuwal (Saudi Arabia)], Frohman, Rachel [National Energy Technology Laboratory (NETL), Morgantown, WV (United States)], Creason, Gabriel [National Energy Technology Laboratory (NETL), Morgantown, WV (United States)] (ORCID:0000000234401174), Seol, Yongkoo [National Energy Technology Laboratory (NETL), Morgantown, WV (United States)] (ORCID:0000000295163405). 2025-11-20. Geologic hydrogen: From natural occurrences to anthropogenic generation – A review of fundamentals, potential, challenges and prospects. https://doi.org/10.1016/j.earscirev.2025.105338
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