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原位椭偏光谱法研究氧化石墨烯薄膜在水蒸气中的膨胀

Swelling of Thin Graphene Oxide Film in Water Vapor Studied by In Situ Spectroscopic Ellipsometry.

作者信息

Zhou Yi, Bauer Ralph A, Zhang Xin, Hong Nina, Verweij Hendrik

机构信息

Department of Materials Science and Engineering, The Ohio State University, Suite 2136, Mars G. Fontana Laboratories, 140 W 19th Avenue, Columbus, Ohio 43210, United States.

Global R&D Inc., 539 Industrial Mile Road, Columbus, Ohio 43228, United States.

出版信息

Langmuir. 2024 Jun 18;40(24):12497-12503. doi: 10.1021/acs.langmuir.4c00897. Epub 2024 Jun 5.

DOI:10.1021/acs.langmuir.4c00897
PMID:38836692
Abstract

Graphene oxide (GO) is obtained by the chemical treatment of graphene sheets, resulting in decoration with oxygen-containing functional groups. In the work presented here, we examined marked changes that occur in a thin film of parallel aligned GO sheets when exposed to water vapor at various pressures. It was found that exceptionally fast and substantial water uptake and release occur that is accompanied by major changes in GO interlayer spacing. These characteristics were obtained in situ with spectroscopic ellipsometry. At 99% relative humidity (RH) and 25 °C, the interlayer spacing became 1.41 nm, which recovers to ∼0.8 nm within 30 s when exposed to 10% RH. Besides layer thickness values, uniaxial optical constants for the GO vs RH were derived from the ellipsometry data. Molar refraction theory was applied that indicated monolayer water formation at ∼91% RH at 25 °C upon water adsorption. Our findings contribute to the understanding of the interaction between GO and its environment. The very outspoken effect of external water vapor pressure on GO water content, interlayer spacing, and optical properties can be utilized in sensing and separation devices, subnanometer positioning, chemical switches, and environmentally aware materials.

摘要

氧化石墨烯(GO)是通过对石墨烯片进行化学处理而获得的,处理后其表面会带有含氧官能团。在本文所展示的工作中,我们研究了平行排列的GO薄片薄膜在不同压力下暴露于水蒸气时所发生的显著变化。研究发现,GO会出现异常快速且大量的吸水和释水现象,同时伴随着层间距的重大变化。这些特性是通过椭偏光谱法原位获得的。在99%相对湿度(RH)和25°C条件下,层间距变为1.41纳米,当暴露于10%RH环境中时,在30秒内可恢复至约0.8纳米。除了层厚度值外,还从椭偏光谱数据中得出了GO相对于RH的单轴光学常数。应用摩尔折射理论表明,在25°C下,水吸附时在约91%RH条件下会形成单层水。我们的研究结果有助于理解GO与其环境之间的相互作用。外部水蒸气压力对GO含水量、层间距和光学性质的显著影响可应用于传感和分离装置、亚纳米定位、化学开关以及环境感知材料中。

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