镧系元素
离子
选择性
镝
萃取(化学)
材料科学
表面改性
纳米技术
分析化学(期刊)
化学物理
化学
无机化学
物理化学
色谱法
有机化学
催化作用
作者
Weiwen Xin,Yanglansen Cui,Yongchao Qian,Tianchi Liu,Xiang‐Yu Kong,Haoyang Ling,Weipeng Chen,Zhehua Zhang,Yuhao Hu,Lei Jiang,Liping Wen
标识
DOI:10.1038/s41467-024-50237-9
摘要
Abstract Biological ion channels exhibit high selectivity and permeability of ions because of their asymmetrical pore structures and surface chemistries. Here, we demonstrate a biomimetic nanofluidic channel (BNC) with an asymmetrical structure and glycyl-L-proline (GLP) -functionalization for ultrafast, selective, and unidirectional Dy 3+ extraction over other lanthanide (Ln 3+ ) ions with very similar electronic configurations. The selective extraction mainly depends on the amplified chemical affinity differences between the Ln 3+ ions and GLPs in nanoconfinement. In particular, the conductivities of Ln 3+ ions across the BNC even reach up to two orders of magnitude higher than in a bulk solution, and a high Dy 3+ /Nd 3+ selectivity of approximately 60 could be achieved. The designed BNC can effectively extract Dy 3+ ions with ultralow concentrations and thereby purify Nd 3+ ions to an ultimate content of 99.8 wt.%, which contribute to the recycling of rare earth resources and environmental protection. Theoretical simulations reveal that the BNC preferentially binds to Dy 3+ ion due to its highest affinity among Ln 3+ ions in nanoconfinement, which attributes to the coupling of ion radius and coordination matching. These findings suggest that BNC-based ion selectivity system provides alternative routes to achieving highly efficient lanthanide separation.
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