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利用布loch 表面波显微镜实时测量单气溶胶纳米颗粒的吸湿性生长动力学。

Real-Time Measurement of the Hygroscopic Growth Dynamics of Single Aerosol Nanoparticles with Bloch Surface Wave Microscopy.

机构信息

Advanced Laser Technology Laboratory of Anhui Province and Institute of Photonics, Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, Anhui 230026, China.

Key Laboratory of Environmental Optics and Technology, Anhui Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Hefei, Anhui 230031, China.

出版信息

ACS Nano. 2020 Jul 28;14(7):9136-9144. doi: 10.1021/acsnano.0c04513. Epub 2020 Jul 14.

Abstract

The growth in aerosol particles caused by water uptake during increasing ambient relative humidity alters the physical and chemical properties of aerosols, which then affects public health, atmospheric chemistry, and the Earth's climate. The temporal resolution and sensitivity of current techniques are not sufficient to measure the growth dynamics of single aerosol nanoparticles. Additionally, the specific time required for phase transition from solid to aqueous has not been measured. Here, we describe a label-free photonic microscope that uses the Bloch surface waves as the illumination source for imaging and sensing to provide real-time measurements of the hygroscopic growth dynamics of a single aerosol (diameter <100 nm) containing the main components of air pollution. This specific time can be measured for both pure and mixed aerosols, showing that organics will delay the phase transition. This photonic microscope can be extended to investigate physicochemical reactions of various aerosols, and then knowing this specific time will be favorable for understanding the reaction kinetics among single aerosols and the surrounding medium.

摘要

气溶胶粒子在环境相对湿度增加时因吸水而增长,改变了气溶胶的物理和化学特性,从而影响了公众健康、大气化学和地球气候。目前的技术在时间分辨率和灵敏度方面都不足以测量单个气溶胶纳米粒子的增长动态。此外,还没有测量从固态到水相的相变所需的特定时间。在这里,我们描述了一种无标记的光子显微镜,它使用布洛赫表面波作为照明源进行成像和传感,以实时测量单个气溶胶(直径<100nm)的吸湿性增长动态,该气溶胶包含空气污染的主要成分。可以测量纯和气溶胶的这一特定时间,结果表明有机物会延迟相变。这种光子显微镜可以扩展到研究各种气溶胶的物理化学反应,而了解这一特定时间将有助于理解单个气溶胶与周围介质之间的反应动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe41/7673255/31a79ce3637c/nihms-1645576-f0002.jpg

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