材料科学
气凝胶
超临界流体
污染物
氢氧化物
化学工程
污染
环境友好型
制作
抗压强度
受污染的水
脆性
碳化作用
分解
降级(电信)
孔雀绿
可燃性
石墨烯
复合材料
水处理
超临界干燥
油页岩
剥脱关节
危险废物
检出限
作者
Shanying Sui,Yi-Xiang Wang,Ye Lu,Yi Yang,Zhenhua Song,Chao Yin,Yixian Zhang,Yixian Zhang,Yu Zhang,Yu Zhang,Huafeng Quan,Shaoqiang Guo,Zhifang Sun
标识
DOI:10.1038/s41467-026-75896-8
摘要
Removing organic pollutants from water is essential for preserving global ecosystems. However, challenges related to recyclability and material stability hinder effective treatment. Inspired by the mortise-and-tenon structure, a series of Ca2+-enhanced amino acid-intercalated layered double hydroxide aerogels featuring an interlocked framework was developed via the structural memory effect and supercritical drying. The aerogels achieve a balance of compressive strength (40.1 − 45.5 MPa) and toughness, overcoming the brittleness of conventional inorganic aerogels. They can remove a broad range of water pollutants, including tetracycline, doxycycline hydrochloride, methyl orange, Congo red and malachite green, with efficiencies of 95.4 − 99.9%, while retaining 87% of their initial efficiency after five regeneration cycles and enabling pollutant detection with a detection limit of 710 nM. The aerogels also exhibit robust stability under liquid nitrogen and butane flame exposure, along with flame resistance (limiting oxygen index ≈ 100%). These findings highlight their potential for water purification under harsh environmental conditions. This study reports the fabrication of stiff MgAl-LDH aerogels by combining a memory-effect strategy with supercritical drying. The resulting aerogels enable the efficient removal and detection of organic pollutants in water.
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