纳米孔
固态
星形聚合物
聚合物
电泳
染色体易位
明星(博弈论)
化学
材料科学
高分子科学
高分子化学
化学工程
纳米技术
化学物理
物理
物理化学
色谱法
有机化学
天体物理学
生物化学
工程类
聚合
基因
作者
Kuo Chen,Minglun Li,M. Muthukumar
出处
期刊:Macromolecules
[American Chemical Society]
日期:2024-07-09
卷期号:57 (14): 6693-6704
标识
DOI:10.1021/acs.macromol.4c01092
摘要
While the translocation of linear polymers through nanopores is well-understood, the underlying mechanism of transport of branched polymers through nanopores is yet to be fully developed. In this general premise, we have investigated the translocation of multiarm star-like polyethylene glycols (PEGs) through single solid-state nanopores, using single-molecule electrophoresis. Our experiments reveal the conformational trajectories of multiarm-PEGs during their sojourn inside the nanopore in exquisite detail. We quantify these pathways in terms of the number of leading arms (fin) and the number of lagging arms (fout), which depend on the pore diameter (d) and the total number of arms (f). We have measured the average translocation time (τ), polymer capture rate (Rc), and polymer conformations during translocation in terms of d, f, and applied voltage (Vm). We find a direct proportionality between Rc and fVm, and between τ and f/Vm. Interestingly, star polymers with more arms inside the nanopore (fin) than outside (fout) also translocate successfully, in contrast with previous suggestions of fin < fout. As the pore size increases, the optimal fin shifts from 0.25f to 0.5f. In addition to gaining insight into the mechanism of translocation of star-like polymers, the present experimental strategy opens new opportunities to characterize and separate polymers with different branching architectures.
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