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March 6, 2026Next Energy4 citationsOpen Access

Low-carbon energy storage via liquid organic hydrogen carriers: From new developments to global initiatives

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SNSomtochukwu Godfrey NnabuifeAHAbdulhammed K. HamzatCDCaleb Kwasi Darko

Key Points

  • The aim is to evaluate recent developments and global initiatives in liquid organic hydrogen carriers for efficient hydrogen storage and transport.
  • Review and analysis of recent advancements in LOHC technology.
  • Examination of life cycle assessments and economic studies related to LOHC.
  • Investigation of intensified reactor designs for effective dehydrogenation.
  • Evaluation of commercial projects focusing on large-scale LOHC implementation.
  • LOHC technology shows potential for safe, long-term hydrogen storage and transport.
  • Innovations improve hydrogen storage capacity and reduce emissions if sourced from renewables.
  • Intensified reactor designs improve efficiency of LOHC dehydrogenation processes.
  • Evidence of commercial viability through ongoing large-scale implementation projects.

Abstract

Liquid organic hydrogen carriers (LOHCs) are a promising approach for long-term, low-carbon energy storage via hydrogen, due to their safety profile and compatibility with existing infrastructure. These properties also make it possible for them to efficiently transport and distribute large-scale hydrogen over long distances. This review explores recent advancements in LOHC technology, focusing on innovations that improve hydrogen storage capacity, techno-economics, and environmental impacts of LOHCs. Additionally, it examines global initiatives aimed at scaling LOHC systems for large-scale hydrogen storage and transport whilst highlighting collaborations, policy frameworks, and investment trends that support the integration of LOHC into renewable energy infrastructure. LOHC has the potential to play a critical role in achieving global decarbonization goals by facilitating the safe and reusable storage of low-carbon hydrogen. However, technological challenges persist, and more research is needed to maximize their overall thermal efficiency and market adoption. • Review and analysis of LCA and economic studies of LOHC for hydrogen storage. • LOHCs-renewable H 2 systems can reduce emissions if powered by clean sources. • Intensified reactor designs show promise for efficient LOHC dehydrogenation. • Commercial viability of LOHC technology is evidenced by ongoing large-scale projects.

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Cite This Study

Nnabuife et al. (2026) studied this question.

synapsesocial.com/papers/69aa6f3c531e4c4a9ff5948bhttps://doi.org/10.1016/j.nxener.2026.100533
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