A versatile sample-delivery system for X-ray photoelectron spectroscopy of in-flight aerosols and free nanoparticles at MAX IV Laboratory.

IF 2.5 3区 物理与天体物理
Journal of Synchrotron Radiation Pub Date : 2024-09-01 Epub Date: 2024-08-07 DOI:10.1107/S1600577524005411
C Preger, J Rissler, A Kivimäki, A C Eriksson, N Walsh
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引用次数: 0

Abstract

Aerosol science is of utmost importance for both climate and public health research, and in recent years X-ray techniques have proven effective tools for aerosol-particle characterization. To date, such methods have often involved the study of particles collected onto a substrate, but a high photon flux may cause radiation damage to such deposited particles and volatile components can potentially react with the surrounding environment after sampling. These and many other factors make studies on collected aerosol particles challenging. Therefore, a new aerosol sample-delivery system dedicated to X-ray photoelectron spectroscopy studies of aerosol particles and gas molecules in-flight has been developed at the MAX IV Laboratory. The aerosol particles are brought from atmospheric pressure to vacuum in a continuous flow, ensuring that the sample is constantly renewed, thus avoiding radiation damage, and allowing measurements on the true unsupported aerosol. At the same time, available gas molecules can be used for energy calibration and to study gas-particle partitioning. The design features of the aerosol sample-delivery system and important information on the operation procedures are described in detail here. Furthermore, to demonstrate the experimental range of the aerosol sample-delivery system, results from aerosol particles of different shape, size and composition are presented, including inorganic atmospheric aerosols, secondary organic aerosols and engineered nanoparticles.

MAX IV 实验室用于飞行气溶胶和游离纳米粒子 X 射线光电子能谱分析的多功能样品输送系统。
气溶胶科学对气候和公共卫生研究都至关重要,近年来,X 射线技术已被证明是气溶胶粒子特征描述的有效工具。迄今为止,此类方法通常涉及对收集到基底上的颗粒进行研究,但高光子通量可能会对此类沉积颗粒造成辐射损伤,而且取样后挥发性成分可能会与周围环境发生反应。这些因素以及其他许多因素使得对收集到的气溶胶粒子进行研究具有挑战性。因此,MAX IV 实验室开发了一种新的气溶胶样品输送系统,专门用于对飞行中的气溶胶颗粒和气体分子进行 X 射线光电子能谱研究。气溶胶粒子以连续流动的方式从大气压带到真空中,确保样品不断更新,从而避免辐射损伤,并可对真正的无支撑气溶胶进行测量。同时,可用的气体分子可用于能量校准和研究气体-粒子分区。本文详细介绍了气溶胶样品输送系统的设计特点和操作程序的重要信息。此外,为了展示气溶胶样本输送系统的实验范围,还介绍了不同形状、大小和成分的气溶胶粒子的实验结果,包括无机大气气溶胶、二次有机气溶胶和工程纳米粒子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Synchrotron Radiation
Journal of Synchrotron Radiation INSTRUMENTS & INSTRUMENTATIONOPTICS&-OPTICS
CiteScore
5.60
自引率
12.00%
发文量
289
审稿时长
1 months
期刊介绍: Synchrotron radiation research is rapidly expanding with many new sources of radiation being created globally. Synchrotron radiation plays a leading role in pure science and in emerging technologies. The Journal of Synchrotron Radiation provides comprehensive coverage of the entire field of synchrotron radiation and free-electron laser research including instrumentation, theory, computing and scientific applications in areas such as biology, nanoscience and materials science. Rapid publication ensures an up-to-date information resource for scientists and engineers in the field.
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