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Advanced Carbon Capture and Utilization Technologies

A special issue of Energies (ISSN 1996-1073). This special issue belongs to the section "B3: Carbon Emission and Utilization".

Deadline for manuscript submissions: 31 January 2027 | Viewed by 886

Editors

Energy and Transportation Domain, Beijing Institute of Technology, Zhuhai, China
Interests: low-energy CO2 capture; integrated CO2 capture and utilization; hydrogen-ammonia energy utilization

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Guest Editor
School of Materials and Energy, Guangdong University of Technology, Guangzhou, China
Interests: CO2 capture; zero-carbon energy system; carbon emission measurement and life cycle assessment

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Guest Editor
International Research Center for Renewable Energy & State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University, Xi'an, China
Interests: CO2 conversion; photo/thermal catalysis; solar fuels

Special Issue Information

Dear Colleagues,

Against the backdrop of intensifying global climate change, reducing atmospheric carbon dioxide (CO2) levels has become one of the central concerns of the international community. While renewable energy and energy efficiency improvements play essential roles in curbing carbon emissions, mitigation alone is insufficient to meet the temperature goals set by the Paris Agreement. Carbon capture, utilization, and storage (CCUS) has thus emerged as an indispensable complementary strategy. In recent years, CO2 capture and utilization technologies have evolved beyond traditional geological storage toward more efficient and economically viable pathways that valorize CO2 as a resource. By converting CO2 into fuels, chemicals, construction materials, and high-value products, CCU not only closes the carbon cycle but also holds the potential to create new value chains and green economic opportunities. Nevertheless, the field continues to face challenges such as high capture energy penalties, insufficient conversion efficiency, complex system integration, and underdeveloped policy and market mechanisms. In this context, this Special Issue aims to compile the latest breakthroughs and foster progress from fundamental research to industrial implementation, providing critical scientific and technological support for building a low-carbon, sustainable future energy and industrial system.

This Special Issue, "Advanced Carbon Capture and Utilization Technologies", focuses on cutting-edge research and technological innovations aimed at addressing global climate challenges through efficient carbon management. It brings together contributions spanning novel capture materials and processes, emerging utilization pathways, and integrated system designs that enhance the economic and environmental viability of CO2 conversion. Topics of interest for publication include, but are not limited to, the following:

  • CO2 absorption;
  • CO2 adsorption;
  • Membrane technologies;
  • Oxy-fuel combustion;
  • Calcium looping and chemical looping;
  • Carbon mineralization;
  • Electrochemical and catalytic conversion;
  • Energy system integration with CCUS;
  • Direct air capture;
  • Life cycle analysis of CCUS technologies;
  • Techno-economic analysis of CCUS technologies;
  • Policy research related to CCUS.

Dr. Song He
Dr. Junyao Wang
Dr. Fan Sun
Guest Editors

Manuscript Submission Information

Manuscripts should be submitted online at www.mdpi.com by registering and logging in to this website. Once you are registered, click here to go to the submission form. Manuscripts can be submitted until the deadline. All submissions that pass pre-check are peer-reviewed. Accepted papers will be published continuously in the journal (as soon as accepted) and will be listed together on the special issue website. Research articles, review articles as well as short communications are invited. For planned papers, a title and short abstract (about 250 words) can be sent to the Editorial Office for assessment.

Submitted manuscripts should not have been published previously, nor be under consideration for publication elsewhere (except conference proceedings papers). All manuscripts are thoroughly refereed through a single-anonymized peer-review process. A guide for authors and other relevant information for submission of manuscripts is available on the Instructions for Authors page. Energies is an international peer-reviewed open access semimonthly journal published by MDPI.

Please visit the Instructions for Authors page before submitting a manuscript. The Article Processing Charge (APC) for publication in this open access journal is 2600 CHF (Swiss Francs). Submitted papers should be well formatted and use good English. Authors may use MDPI's English editing service prior to publication or during author revisions.

Keywords

  • CO2 capture
  • CO2 utilization
  • ICCU
  • techno-economic analysis
  • life cycle analysis

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Published Papers (1 paper)

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Research

30 pages, 46680 KB  
Article
Experimental Study of the Effect of Different Influencing Factors on the Interaction of CO2, Water, and Basalt
by Shihao Wang, Hailong Tian, Shuai Liu, Xuepeng Wang, Xueqiang Liu and Xincun Zhao
Energies 2026, 19(11), 2591; https://doi.org/10.3390/en19112591 - 27 May 2026
Viewed by 518
Abstract
Basalt has been studied in recent years as a novel geological medium for CO2 sequestration, thus enriching and expanding the carbon sink potential of geological bodies. In this study, four sets of CO2–water–basalt interaction experiments were carried out for different [...] Read more.
Basalt has been studied in recent years as a novel geological medium for CO2 sequestration, thus enriching and expanding the carbon sink potential of geological bodies. In this study, four sets of CO2–water–basalt interaction experiments were carried out for different ranges of temperature, pressure, particle size, and basalt type, while taking account of actual in situ temperature and pressure conditions in basalt strata. The aim was to provide a theoretical basis for the construction of future basalt CO2 mineralization and storage projects. It was demonstrated that basalt begins to form calcitic minerals above 36 °C, with the highest carbonate mineral formation occurring at 66 °C accompanied by minor hydration of magnesium carbonate minerals. Below 26 °C, the dissolution of calcitic minerals showed a gradually increasing trend at higher pressures, with small amounts of hydrated magnesium carbonate minerals and calcite being formed at 9 MPa and 13 MPa. Maximum mineral dissolution occurred at 30–35 mesh particle size. The dissolution reaction in porous basalt was more intense for different basalt types (e.g., porous basalt and massive olivine basalt). Full article
(This article belongs to the Special Issue Advanced Carbon Capture and Utilization Technologies)
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