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触媒変換、バイオマス結合、水素統合、鉱物化、人工知能による統合的CO2回収と循環型炭素利用

Integrated CO2 Capture and Circular Carbon Utilization Through Catalytic Conversion, Biomass Coupling, Hydrogen Integration, Mineralization, and Artificial Intelligence (原題)

Afsha Ali, Muhammad Kashif Khan, Farooq Ahmad, Fiaz Hussaın, Muhammad Tahir Amin

Catalysts📚 査読済 / ジャーナル2026-08-21#CCUSOrigin: Global経営インパクト: コスト削減対象セクター: cross_sector
DOI: 10.3390/catal16080748
原典: https://doi.org/10.3390/catal16080748

🤖 gxceed AI 要約

日本語

CO2回収を単独の分離工程ではなく統合的な炭素管理システムの一部と捉え、触媒変換、バイオマス結合、水素統合、鉱物化、AI支援プロセス設計を含む包括的フレームワークを提示。反応性回収技術と逐次回収技術を比較し、熱触媒、電気化学、光電気化学、生物学的変換経路を評価。機械学習や分子スクリーニング、プロセスシミュレーションが材料選択とシステム最適化を加速する可能性を議論。

English

This review frames CO2 capture as part of an integrated carbon management system, covering catalytic conversion, biomass coupling, hydrogen integration, mineralization, and AI-assisted process design. It contrasts reactive capture with sequential capture and compares thermocatalytic, electrochemical, photoelectrochemical, and biological pathways. Machine learning and process simulation are highlighted for accelerating material selection and system optimization.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本では、カーボンリサイクル技術が国家戦略として位置づけられ、CCUSや水素関連の研究開発が推進されている。本レビューは、統合的炭素管理の設計指針を提供し、日本のカーボンリサイクル政策や産業界の技術選択に示唆を与える。

In the global GX context

Globally, this review aligns with the growing emphasis on circular carbon economy and integrated carbon management, relevant to ISSB and CSRD disclosure requirements that demand credible carbon accounting. It provides a framework for comparing technologies, which is useful for transition finance and climate risk assessment.

👥 読者別の含意

🔬研究者:Provides a comprehensive framework for comparing integrated CO2 capture and utilization technologies, useful for identifying research gaps and design criteria.

🏢実務担当者:Offers guidance on selecting and scaling carbon management technologies, relevant for corporate decarbonization strategies and reporting.

🏛政策担当者:Highlights the need for credible reporting frameworks and research agendas to support policy on carbon capture and circular carbon economy.

📄 Abstract(原文)

Carbon capture is more and more often seen as a component of an integrated carbon-management system than as a stand-alone separation phase. The practical utility of capture technology depends on the chemical state in which the carbon dioxide is held, the energy and material needs for regeneration, the compatibility of the caught species with downstream catalysis and the lifetime of the resulting carbon-containing product. This paper offers an in-depth framework for integrated CO2 capture and circular carbon use, including catalytic conversion, bio-integrated processes, biomass-derived materials and fuels, hydrogen-enabled routes, mineralization, and artificial intelligence-assisted process design. Reactive capture techniques that convert carbonate, bicarbonate, carbamate, dissolved CO2 or surface-bound intermediates without first generating a purified gas stream are contrasted with sequential capture, purification, compression, transport and conversion. The thermocatalytic, electrochemical, photoelectrochemical and biological conversion pathways are compared against common parameters such as working capacity, conversion rate, selectivity, carbon efficiency, regeneration energy, stability and life-cycle greenhouse gas performance. Special emphasis is given on dual-functional materials, interfacial reactors, bio-integrated methanation, carbon mineralization in construction materials and coupling with renewable hydrogen. The review also discusses how machine learning, molecular screening, process simulation, graph-based data architecture, and digital monitoring could speed up material selection and system optimization. Across all pathways, the central design requirement is not maximum capture capacity alone, but a balanced match among binding strength, transport, catalytic reactivity, product separation, durability, and carbon permanence. A reporting framework and research agenda are proposed to guide credible scale-up and comparison of integrated carbon-management technologies.

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