膜
材料科学
离子
电解质
纳米技术
化学物理
薄膜
化学工程
沉积(地质)
相(物质)
吸附
离子运输机
格子(音乐)
多孔性
动能
分子动力学
聚结(物理)
纳米尺度
脚手架
作者
Jinfeng Chen,Liangmei Rao,Zezhong Jiang,Jiangyan Song,Xin‐Gui Li,Fei Yu,Jie Ma
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-09-08
标识
DOI:10.1021/acsnano.6c08249
摘要
Abstract Metal–organic frameworks (MOFs) with crystallographically defined pores and chemically programmable internal structures are attractive candidates for regulating ion transport at the molecular scale. Yet, it is still difficult to grow MOF-on-MOF structures as continuous thin membranes because the secondary phase usually forms either thick coatings or discontinuous particles, both of which hinder ion transport. In this work, we found that Cu–O–Zr coordination at the interface can guide UiO-66 to grow continuously on the CuOx-BDC scaffold even under severe lattice mismatch, producing a thin integrated membrane. The resulting architecture also seals an interfacial void, which serves as an electrolyte reservoir during operation, improves access to the internal surface, and helps protect the chemically unstable core. More importantly, the confined overgrowth allows the mismatch-induced tensile strain to be accommodated as elastic lattice distortion in the UiO-66 layer. The resulting strain-expanded pore structure lowers the kinetic barrier for nanofluidic ion transport through field-assisted partial dehydration. Consequently, the membrane achieves a high Na+ adsorption capacity of 1.36 g m–2 with 95.75% retention after 500 cycles. These results demonstrate the feasibility of redirecting MOF-on-MOF growth from discontinuous particulate deposition to continuous functional membranes for ion sieving.
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