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液相峰力红外显微镜用于化学纳米成像和光谱学。

Liquid-Phase Peak Force Infrared Microscopy for Chemical Nanoimaging and Spectroscopy.

机构信息

Department of Chemistry, Lehigh University, 6 E Packer Avenue, Bethlehem, Pennsylvania 18015, United States.

Department of Chemistry, Indiana University, 800 E Kirkwood Avenue, Bloomington, Indiana 47405, United States.

出版信息

Anal Chem. 2021 Feb 23;93(7):3567-3575. doi: 10.1021/acs.analchem.0c05075. Epub 2021 Feb 11.

Abstract

Peak force infrared (PFIR) microscopy is an emerging atomic force microscopy that bypasses Abbe's diffraction limit in achieving chemical nanoimaging and spectroscopy. The PFIR microscopy mechanically detects the infrared photothermal responses in the dynamic tip-sample contact of peak force tapping mode and has been applied for a variety of samples, ranging from soft matters, photovoltaic heterojunctions, to polaritonic materials under the air conditions. In this article, we develop and demonstrate the PFIR microscopy in the liquid phase for soft matters and biological samples. With the capability of controlling fluid compositions on demand, the liquid-phase peak force infrared (LiPFIR) microscopy enables tracking of the polymer surface reorganization in fluids and detecting the product of click chemical reaction in the aqueous phase. Both broadband spectroscopy and infrared imaging with ∼10 nm spatial resolution are benchmarked in the fluid phase, together with complementary mechanical information. We also demonstrate the LiPFIR microscopy on revealing the chemical composition of a budding site of yeast cell wall particles in water as an application on biological structures. The label-free, nondestructive chemical nanoimaging and spectroscopic capabilities of the LiPFIR microscopy will facilitate the investigations of soft matters and their transformations at the solid/liquid interface.

摘要

峰值力红外(PFIR)显微镜是一种新兴的原子力显微镜技术,它绕过了阿贝衍射极限,实现了化学纳米成像和光谱学。PFIR 显微镜通过机械检测峰值力敲击模式下动态针尖-样品接触中的红外光热响应,已经应用于各种样品,包括软物质、光伏异质结、以及在空气条件下的极化激元材料。在本文中,我们在液相中开发并演示了 PFIR 显微镜在软物质和生物样品中的应用。通过按需控制流体成分的能力,液相峰值力红外(LiPFIR)显微镜能够跟踪聚合物表面在流体中的重组,并检测水相中环化反应的产物。在液相中,同时进行了宽带光谱和具有约 10nm 空间分辨率的红外成像,以及互补的力学信息。我们还展示了 LiPFIR 显微镜在揭示酵母细胞壁颗粒出芽部位的化学组成方面的应用,这是生物结构方面的一个应用。LiPFIR 显微镜具有非破坏性的、无标记的化学纳米成像和光谱学能力,将有助于在固/液界面研究软物质及其转化。

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