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通过阻抗谱电化学测定固液界面上的薄聚电解质刷的玻璃化转变温度。

Electrochemical determination of the glass transition temperature of thin polyelectrolyte brushes at solid-liquid interfaces by impedance spectroscopy.

出版信息

Anal Chem. 2013 Jul 16;85(14):6561-5. doi: 10.1021/ac4007655. Epub 2013 Jun 28.

Abstract

Devising strategies to assess the glass transition temperature (Tg) of polyelectrolyte assemblies at solid-electrolyte interfaces is very important to understand and rationalize the temperature-dependent behavior of polyelectrolyte films in a wide range of settings. Despite the evolving perception of the importance of measuring Tg under aqueous conditions in thin film configurations, its straightforward measurement poses a challenging situation that still remains elusive in polymer and materials science. Here, we describe a new method based on electrochemical impedance spectroscopy (EIS) to estimate the glass transition temperature of planar polyelectrolyte brushes at solid-liquid interfaces. To measure Tg, the charge transfer resistance (Rct) of a redox probe diffusing through the polyelectrolyte brush was measured, and the temperature corresponding to the discontinuous change in Rct was identified as Tg. Furthermore, we demonstrate that impedance measurements not only facilitate the estimation of Tg but also enable a reliable evaluation of the transport properties of the polymeric interface, i.e., determination of diffusion coefficients, close to the thermal transition. We consider that this approach bridges the gap between electrochemistry and the traditional tools used in polymer science and offers new opportunities to characterize the thermal behavior of complex polymeric interfaces and macromolecular assemblies.

摘要

设计策略来评估聚电解质组装体在固-液界面处的玻璃化转变温度(Tg),对于理解和合理化聚电解质薄膜在广泛环境下的温度依赖性行为非常重要。尽管人们越来越认识到在薄膜构型中在水相条件下测量 Tg 的重要性,但它的直接测量仍然是聚合物和材料科学中的一个具有挑战性的问题。在这里,我们描述了一种基于电化学阻抗谱(EIS)的新方法,用于估计固-液界面处的平面聚电解质刷的玻璃化转变温度。为了测量 Tg,通过聚电解质刷扩散的氧化还原探针的电荷转移电阻(Rct)进行了测量,并且确定与 Rct 的不连续变化相对应的温度为 Tg。此外,我们证明阻抗测量不仅有助于估计 Tg,而且还能够可靠地评估聚合物界面的输运性质,即接近热转变时扩散系数的确定。我们认为,这种方法弥合了电化学和聚合物科学中传统工具之间的差距,并为复杂聚合物界面和大分子组装体的热行为的表征提供了新的机会。

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