双功能
化学
凝聚
肽
水溶液
选择性
纳米技术
化学工程
分离法
相(物质)
分离过程
材料科学
模块化(生物学)
连接器
过程(计算)
生物相容性材料
金属
双水相体系
水介质
作者
Inseok Chae,Ju-Yeon Park,Irene Suhjin Lee,Hyo‐Eon Jin,Fiona M. Doyle,Seung‐Wuk Lee
出处
期刊:Nano Letters
[American Chemical Society]
日期:2025-10-17
卷期号:25 (43): 15754-15760
被引量:4
标识
DOI:10.1021/acs.nanolett.5c04468
摘要
Rare-earth elements (REEs) are essential to clean energy, defense, and advanced electronics, yet their separation remains environmentally intensive due to the chemical similarity among REEs and reliance on harsh separation conditions. Here, we report a genetically engineered, virus-based platform for selective and scalable REE recovery under aqueous conditions through temperature modulation. By codisplaying a lanthanide-binding peptide (LBP) derived from Lanmodulin found in Methylobacterium extorquens and a thermoresponsive elastin-like peptide (ELP) on the major coat proteins of filamentous bacteriophage, we constructed a bifunctional biotemplate that enables temperature-triggered coacervation and selective REE separation. The LBP confers preferential affinity for heavy REEs (HREEs) over light REEs (LREEs), allowing for internal REE fractionation, while ELP-mediated phase transition enables thermoresponsive REE separation. This biomolecular process is recyclable, retaining metal selectivity over multiple cycles. The modularity of the platform supports adaptation to other metal targets, offering a sustainable and tunable strategy for next-generation hydrometallurgy.
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