吸附
复合数
热稳定性
化学工程
相对湿度
材料科学
表面改性
聚合物
胺气处理
湿度
二氧化碳
复合材料
热的
波动性(金融)
水蒸气
制作
耐水性
耐热性
化学
作者
Nayoung Lee (2496451),Gayoung Cheon (22066091),Ju Hyoung Kim (22344792),Jeongwon Youn (22066088),Namju Kim (760293),Chang Seop Hong (1711369)
出处
期刊:
[Figshare (United Kingdom)]
日期:2025-12-08
标识
DOI:10.1021/acsami.5c19588.s001
摘要
Indoor carbon dioxide (CO2) levels in enclosed spaces frequently exceed the recommended limit of 1000 ppm, creating a strong demand for sorbents that can efficiently capture dilute CO2. Amine-functionalized metal–organic frameworks (MOFs) are promising in this regard due to their strong CO2 affinity, but their long-term stability is compromised by competitive water binding and amine loss. In this work, Mg2(hob) [hob4– = 5,5′-(hydrazine-1,2-diylidenebis(methanylylidene))bis(2-oxidobenzoate)] was employed as a platform and functionalized with propylene-linked diamines, which offer higher thermal stability and reduced volatility under humid conditions compared to ethylene-linked analogues. Among the series, Mg2(hob) functionalized with N-methyl-1,3-propanediamine (mpn-MOF) showed the highest CO2 uptake (10.3 wt % at 1000 ppm and 25 °C), together with a pronounced low-pressure cooperative adsorption step. To further improve water resistance and enable practical shaping, Mg2(hob) was blended with poly(vinylidene fluoride) (PVDF) to fabricate bead-shaped composites containing 15, 25, and 35 wt % PVDF, followed by postsynthetic mpn functionalization. Notably, mpn-MOF@PVDF25 retained most of its CO2 uptake after 15 days at 40% relative humidity. This demonstrates a practical approach that combines propylene-linked diamine functionalization with hydrophobic polymer shaping to achieve long-term indoor CO2 capture.
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