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纳米结构解释了共价附着的光滑液体表面的行为。

Nanostructure Explains the Behavior of Slippery Covalently Attached Liquid Surfaces.

作者信息

Gresham Isaac J, Lilley Seamus G, Nelson Andrew R J, Koynov Kaloian, Neto Chiara

机构信息

School of Chemistry and the University of Sydney Nano Institute, The University of Sydney, Sydney, NSW, Australia.

Australian Center for Neutron Scattering, ANSTO, Sydney, NSW, Australia.

出版信息

Angew Chem Int Ed Engl. 2023 Oct 9;62(41):e202308008. doi: 10.1002/anie.202308008. Epub 2023 Sep 4.

Abstract

Slippery covalently-attached liquid surfaces (SCALS) with low contact angle hysteresis (CAH, <5°) and nanoscale thickness display impressive anti-adhesive properties, similar to lubricant-infused surfaces. Their efficacy is generally attributed to the liquid-like mobility of the constituent tethered chains. However, the precise physico-chemical properties that facilitate this mobility are unknown, hindering rational design. This work quantifies the chain length, grafting density, and microviscosity of a range of polydimethylsiloxane (PDMS) SCALS, elucidating the nanostructure responsible for their properties. Three prominent methods are used to produce SCALS, with characterization carried out via single-molecule force measurements, neutron reflectometry, and fluorescence correlation spectroscopy. CO snow-jet cleaning was also shown to reduce the CAH of SCALS via a modification of their grafting density. SCALS behavior can be predicted by reduced grafting density, Σ, with the lowest water CAH achieved at Σ≈2. This study provides the first direct examination of SCALS grafting density, chain length, and microviscosity and supports the hypothesis that SCALS properties stem from a balance of layer uniformity and mobility.

摘要

具有低接触角滞后(CAH,<5°)和纳米级厚度的共价连接的光滑液体表面(SCALS)表现出令人印象深刻的抗粘附性能,类似于注入润滑剂的表面。它们的功效通常归因于组成的束缚链的类似液体的流动性。然而,促进这种流动性的精确物理化学性质尚不清楚,这阻碍了合理设计。这项工作量化了一系列聚二甲基硅氧烷(PDMS)SCALS的链长、接枝密度和微粘度,阐明了其性能所对应的纳米结构。使用三种主要方法来制备SCALS,并通过单分子力测量、中子反射率和荧光相关光谱进行表征。还表明,通过改变SCALS的接枝密度,CO雪喷清洗可以降低其CAH。通过降低接枝密度Σ可以预测SCALS的行为,在Σ≈2时实现最低的水接触角。本研究首次直接考察了SCALS的接枝密度、链长和微粘度,并支持了SCALS性能源于层均匀性和流动性平衡的假设。

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