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◆ Chemical Engineering Journal2026-01-12· Hydrothermal synthesis

Alcohol-assisted hydrothermal synthesis of facet-engineered MgO: Molecular structure effects on CO2 adsorption at high temperature

Xiaoyu Yan, Aibing Yu, Xiaoqiong Ren, Mengting Wang, Hongzhe He, Ruoqun Zhang, Zhishang Wu, Binbin Qian, Song Zhou, Baiqian Dai

原始摘要(英文原文)· Original abstract
High-temperature CO₂ capture is vital for hydrogen production and carbon-neutral energy systems. Magnesium oxide (MgO) offers excellent thermal stability and strong Lewis basicity, but controlling the formation of its active (111) plane remains challenging. Here, a one-pot alcohol-assisted hydrothermal method was developed to synthesize MgO nanosheets with highly exposed (111) facets without toxic surfactants or complex procedures. Systematic studies of various alcohols revealed that alcohol-mediated growth effectively promotes (111) plane exposure and strengthens surface basicity, as confirmed by CO₂-TPD and XPS. The optimized MgO showed superior CO₂ adsorption capacities of 1.32 mmol g −1 at 300 °C and 0.44 mmol g −1 at 600 °C, outperforming commercial MgO. DFT calculations indicated that alcohol molecules guide Mg(OH)₂ crystal growth via preferential adsorption, enabling controlled (111) plane formation. This work provides a sustainable and scalable strategy for developing MgO-based CO₂ adsorbents and advances understanding of alcohol-mediated crystal growth. • A green, one-pot alcohol-assisted hydrothermal method was developed for MgO synthesis. • Alcohol molecular structure directs Mg(OH)₂ crystal growth and MgO(111) facet exposure. • Ethanol-assisted MgO shows superior CO₂ uptake (1.32 mmol g −1 at 300 °C, 0.44 at 600 °C). • Provides a scalable route and mechanistic insight for high-temperature CO₂ capture.
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Alcohol-assisted hydrothermal synthesis of facet-engineered MgO: Molecular structure effects on CO2 adsorption at high temperature — 科研速览 Science Skim