無酸素海盆の炭素隔離利用可能性を評価(UCSB-led International Team Evaluates Anoxic Marine Basins as Potential Sites for Carbon Sequestration)

2026-07-27 カリフォルニア大学サンタバーバラ校(UCSB)

カリフォルニア大学サンタバーバラ校(UCSB)主導の国際研究チームは、酸素のほとんど存在しない海洋盆地(無酸素海盆)を利用した新たな二酸化炭素除去技術「Marine Anoxic Carbon Storage(MACS)」の実現可能性を評価した。MACSは、農業残渣や林業由来の植物バイオマスを深海の無酸素環境へ沈降・埋没させ、分解を抑えて炭素を数百~数千年にわたり隔離する構想である。研究では、黒海、メキシコ湾オルカ海盆、深海塩水プールなどを候補地とし、生態系への影響、水質変化、炭素の長期安定性、輸送に伴う温室効果ガス排出、社会・経済面を多分野の専門家が検討した。その結果、MACSは気候変動対策に必要なギガトン規模の炭素除去能力を持つ可能性がある一方、大規模導入には海洋循環や成層構造の将来変化、生態系への影響評価など多くの研究課題が残されていると結論付けた。本研究は、国際的な研究連携を構築し、海洋を利用した炭素除去技術の科学的基盤整備に向けた第一歩となる。

<関連情報>

アイデアと展望:Max MACS – CO2除去のための海洋無酸素炭素貯蔵の潜在的な世界規模を制限する Ideas and perspectives: Max MACS – constraining the potential global scale of Marine Anoxic Carbon Storage for CO2 removal

Morgan Reed Raven, Nitai Amiel, Dror L. Angel, James P. Barry, Thomas M. Blattmann, Laura Boicenco, Antoine Crémière, Natalya Evans, Nora Gallarotti, Sebastian Haas, Jan-Hendrik Hehemann, Peter Krost, Pranay Lal, David Lordkipanidze, Tiia Luostarinen, Aaron M. Martinez, Allison J. Matzelle, Selma Menabit, Mihaela Muresan, Andreas Neumann, Jean-Daniel Paris, Christopher R. Pearce, Nick Reynard, Daniel L. Sanchez, Florence Schubotz, Violeta Slabakova, Adrian Stanica, Elena Stoica, Andrew K. Sweetman, Tina Treude, Yoana G. Voynova, and Nikolaos D. Zarokanellos
Biogeosciences  Published:08 Jun 2026
DOI:https://doi.org/10.5194/bg-23-3755-2026

無酸素海盆の炭素隔離利用可能性を評価(UCSB-led International Team Evaluates Anoxic Marine Basins as Potential Sites for Carbon Sequestration)

Abstract

Marine Anoxic Carbon Storage (MACS) is a potential strategy for enhancing atmospheric CO2 removal (CDR) by sequestering organic carbon produced by terrestrial plants in stable, anoxic marine reservoirs. Initial results suggest that MACS could, in theory, operate at the gigatonne scale that would be required to impact global climate, with limited environmental risk and promising opportunities for co-benefits. However, several outstanding knowledge gaps make it challenging to quantify the actual potential global scale of MACS with confidence. To inform decisions about climate mitigation and trade-offs in the future, it is essential that we know how MACS implementation at scale would impact critical environmental and economic systems in the context of likely future scenarios.

Building on the results of a workshop in Bucharest, Romania in 2025, we discuss the potential impacts of MACS activities on the ecology, biogeochemistry, economy, and community around the Black Sea, seafloor brines, and other anoxic marine sites. Quantifiable limits to the potential maximum feasible scale of MACS for CDR are organized into five criteria: (1) Durable storage site capacity; (2) Biomass sources and logistics; (3) Greenhouse gas balance; (4) Oxygen and sulfide impacts at the redoxcline; and (5) Impacts on dissolved organic matter or nutrients in the oxic zone. For each criterion, we evaluate the factors that could limit scale, our current state of knowledge, and the priority knowledge gaps that, if addressed, would improve our ability to estimate the potential global scale of MACS for CDR. Research is needed to understand its potential impacts at scale, but MACS is nonetheless worthy of serious consideration as a potential pathway for climate mitigation in coming decades.

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