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Graphene-Based Platform for Infrared Near-Field Nanospectroscopy of Water and Biological Materials in an Aqueous Environment

机译:水性环境中水和生物材料红外近场纳米光谱的基于石墨烯的平台

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摘要

Scattering scanning near-field optical microscopy (s-SNOM) has emerged as a powerful nanoscale spectroscopic tool capable of characterizing individual biomacromolecules and molecular materials. However, applications of scattering-based near-field techniques in the infrared (IR) to native biosystems still await a solution of how to implement the required aqueous environment. In this work, we demonstrate an IR-compatible liquid cell architecture that enables near-field imaging and nanospectroscopy by taking advantage of the unique properties of graphene. Large-area graphene acts as an impermeable monolayer barrier that allows for nano-IR inspection of underlying molecular materials in liquid. Here, we use s-SNOM to investigate the tobacco mosaic virus (TMV) in water underneath graphene. We resolve individual virus particles and register the amide land II bands of TMV at ca. 1520 and 1660 cm(-1), respectively, using nanoscale Fourier transform infrared spectroscopy (nano-FTIR). We verify the presence of water in the graphene liquid cell by identifying a spectral feature associated with water absorption at 1610 cm(-1).
机译:散射扫描近场光学显微镜(s-SNOM)已经成为一种强大的纳米级光谱学工具,能够表征单个生物大分子和分子材料。但是,基于散射的近场技术在红外(IR)中应用于本机生物系统仍在等待如何实现所需水环境的解决方案。在这项工作中,我们演示了一种IR兼容的液体电池体系结构,该体系结构通过利用石墨烯的独特性能实现了近场成像和纳米光谱学。大面积石墨烯充当不可渗透的单层屏障,可对液体中的基础分子材料进行纳米红外检查。在这里,我们使用s-SNOM研究石墨烯下方水中的烟草花叶病毒(TMV)。我们解析单个病毒颗粒,并在TM处注册TMV的酰胺地带II带。 1520和1660 cm(-1),分别使用纳米级傅立叶变换红外光谱(nano-FTIR)。我们通过识别与1610 cm(-1)的吸水率相关的光谱特征来验证石墨烯液体电池中水的存在。

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