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◆ Nano Materials Science2025-12-01· Nanotechnology

Confinement engineered systems for CO2 valorization current advances and future directions

Zixin Li, Mengqian Li, Qinyuan Hu, Tianyi Han, Haihui Lan, Yao Hu, Ying Zhou, Huicong Xia, Xingchen Jiao, Sailin Liu

原始摘要(英文原文)· Original abstract
Thermocatalysis and electrocatalysis are central approaches for CO 2 conversion, offering the potential for mild reaction conditions and integration with renewable energy sources. Nanoconfinement, which constructs tailored nanoscale environments, emerges as a powerful strategy to regulate reactant adsorption and steer reaction pathways, thereby markedly improving the efficiency and selectivity of CO 2 conversion processes. This review comprehensively summarizes the latest progress in nanoconfinement strategies for both thermocatalytic and electrocatalytic CO 2 reduction, highlighting advances in catalytic activity control and identifying ongoing challenges and future research directions. In thermocatalysis, confinement enhances CO 2 hydrogenation by stabilizing reactive intermediates and mitigating catalyst sintering. For electrocatalysis, nanoconfinement promotes the selective formation of multi-carbon products by enriching key intermediates (such as ∗CO) and facilitating C–C coupling. Emerging synergistic systems that integrate thermal and electrochemical processes further capitalize on the complementary benefits of both electrical and hydrogen-induced transformations, paving the way for highly efficient CO 2 conversion. Despite notable advancements, obstacles remain—including scalable synthesis of nanoconfined catalysts, incomplete mechanistic understanding, and limited catalyst durability—which hinder large-scale deployment. Going forward, research should focus on advancing in-situ characterization techniques and computational modeling to elucidate confinement effects, while also prioritizing the development of scalable, robust catalytic systems.
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