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◆ ACS Sustainable Chemistry & Engineering2026-05-04· Catalysis

Synergistic Effects of Mesoporosity and Surface Acidity in Sepiolite-Based Catalysts for Low-Temperature CO <sub>2</sub> Desorption

Rui Zhang, Qingzhi Zhang, Li Luo, Yingjie Niu, Sisi Zhong, Chan Wang, Chao’en Li, Mohammad W. Amer, Francesco Barzagli

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide High regeneration energy remains a major limitation of amine-based CO 2 capture. This study investigates sepiolite (SEP) modified with metal oxides as solid acid catalysts to enhance CO 2 desorption from CO 2 -rich monoethanolamine at 88 °C. Ten composite catalysts incorporating Al 2 O 3, CeO 2, NiO, and CoO were synthesized via impregnation and characterized. Catalytic performance was evaluated in terms of desorption rate, CO 2 release, and regeneration heat duty, and compared with pristine SEP and a blank system. All modified materials improved regeneration efficiency. The activity trend followed CoO@SEPs > NiO@SEPs > Al 2 O 3 @SEPs > CeO 2 @SEP > SEP > blank, with CoO@SEP-2/1 achieving a 77% increase in CO 2 desorption and a 43.5% reduction in heat duty relative to the blank system, while maintaining stability over 20 cycles. Physicochemical characterization combined with machine learning analysis reveals that performance is governed not by total acidity alone but by a synergistic interplay between mesoporous accessibility and surface acidity arising from support-oxide interactions. Catalysts combining sufficient Lewis acid sites with moderate total acidity and limited strong Brønsted contributions exhibit the highest desorption efficiency. These findings establish structure–acidity–performance relationships in SEP-based catalysts and provide a scalable route to reduce the energy penalty of sorbent regeneration.
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Synergistic Effects of Mesoporosity and Surface Acidity in Sepiolite-Based Catalysts for Low-Temperature CO <sub>2</sub> Desorption — 科研速览 Science Skim