材料科学
碱金属
离子
铌酸锂
钙钛矿(结构)
之字形的
纳米技术
化学物理
纳米流体学
锂(药物)
工作(物理)
纳米材料
选择性吸附
纳米结构
吸附
选择性
化学工程
频道(广播)
科技与社会
作者
Xinyu Ai,Liu Zhu,FengLu Cui,Weijun He,Xinyao Dong,Yang Yang,Meiling Wu,Yong Peng,Fengchao Wang,Zhongyi Jiang,Kai‐Ge Zhou
标识
DOI:10.1038/s41467-026-71579-6
摘要
The separation of alkali ions holds profound fundamental significance and immense application potential, particularly driven by the increasing demand for lithium in the era of sustainable energy. Previous approaches relying on the static factor (e.g., size, charge, solubility, adsorption affinities) prove inadequate in the separation of alkali ions due to their highly similar physicochemical properties. By leveraging the difference of friction-an intrinsic factor that incorporates the effects of ion-media correlation with channel or interlayer species during the migration, this work presents a nanofluidic tribology strategy utilizing a platform based on two-dimensional niobate perovskite nanochannels to achieve alkali ions separation. By generating ~42% difference of transport friction at nanonewton-scale, our channels amplify the separation factor between Li+/Na+ and K+/Na+ up to 33.1 ~ 45.9, surpassing the state-of-the-art artificial nanochannels by over an order of magnitude. Tuning the channel structural symmetry from herringbone to zigzag type modulates friction-differentiation, achieving a Li+ recognized selectivity (Li+/K+ ~ 28.0). This work establishes a paradigm for separation science through the lens of friction-differentiation and will inspire more advancing technology to secure strategic alkali ion resources critical for a sustainable future. A 2D nanochannel based on niobate perovskite enables alkali ion separation through a friction-differentiation strategy, offering a potential approach for lithium extraction relevant to renewable energy technologies.
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