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通过原子力-电化学显微镜研究末端接枝柔性聚合物链的动力学。用弹性边界扩散模型和蒙特卡罗模拟对接近曲线进行理论建模。压缩诱导侧链逃逸的证据。

Accessing the dynamics of end-grafted flexible polymer chains by atomic force-electrochemical microscopy. Theoretical modeling of the approach curves by the elastic bounded diffusion model and Monte Carlo simulations. Evidence for compression-induced lateral chain escape.

作者信息

Abbou Jeremy, Anne Agnès, Demaille Christophe

机构信息

Laboratoire d'Electrochimie Moléculaire, Unité Mixte de Recherche Université-CNRS No. 7591, Université de Paris 7-Denis Diderot, 2 place Jussieu, 75251 Paris Cedex 05, France.

出版信息

J Phys Chem B. 2006 Nov 16;110(45):22664-75. doi: 10.1021/jp064559i.

Abstract

The dynamics of a molecular layer of linear poly(ethylene glycol) (PEG) chains of molecular weight 3400, bearing at one end a ferrocene (Fc) label and thiol end-grafted at a low surface coverage onto a gold substrate, is probed using combined atomic force-electrochemical microscopy (AFM-SECM), at the scale of approximately 100 molecules. Force and current approach curves are simultaneously recorded as a force-sensing microelectrode (tip) is inserted within the approximately 10 nm thick, redox labeled, PEG chain layer. Whereas the force approach curve gives access to the structure of the compressed PEG layer, the tip-current, resulting from tip-to-substrate redox cycling of the Fc head of the chain, is controlled by chain dynamics. The elastic bounded diffusion model, which considers the motion of the Fc head as diffusion in a conformational field, complemented by Monte Carlo (MC) simulations, from which the chain conformation can be derived for any degree of confinement, allows the theoretical tip-current approach curve to be calculated. The experimental current approach curve can then be very satisfyingly reproduced by theory, down to a tip-substrate separation of approximately 2 nm, using only one adjustable parameter characterizing the chain dynamics: the effective diffusion coefficient of the chain head. At closer tip-substrate separations, an unpredicted peak is observed in the experimental current approach curve, which is shown to find its origin in a compression-induced escape of the chain from within the narrowing tip-substrate gap. MC simulations provide quantitative support for lateral chain elongation as the escape mechanism.

摘要

使用组合式原子力 - 电化学显微镜(AFM - SECM)在大约100个分子的尺度上,探测了分子量为3400的线性聚(乙二醇)(PEG)链分子层的动力学,该分子层一端带有二茂铁(Fc)标记,并以低表面覆盖率通过硫醇端接枝到金基底上。当力传感微电极(探针)插入约10 nm厚的、带有氧化还原标记的PEG链层内时,同时记录力和电流逼近曲线。力逼近曲线可用于了解压缩PEG层的结构,而由链的Fc头部的探针 - 基底氧化还原循环产生的探针电流则受链动力学控制。弹性受限扩散模型将Fc头部的运动视为在构象场中的扩散,并辅以蒙特卡罗(MC)模拟,通过该模拟可以得出任何受限程度下的链构象,从而计算出理论探针电流逼近曲线。然后,理论可以非常令人满意地重现实验电流逼近曲线,直至探针 - 基底间距约为2 nm,仅使用一个表征链动力学的可调参数:链头部的有效扩散系数。在更近的探针 - 基底间距下,在实验电流逼近曲线中观察到一个意外的峰值,结果表明其起源于链在变窄的探针 - 基底间隙内由于压缩而导致的逃逸。MC模拟为作为逃逸机制的侧链伸长提供了定量支持。

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