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3D 打印微分吸收系统快速高效采集大气 NO 用于同位素分析。

Fast and Efficient Atmospheric NO Collection for Isotopic Analysis by a 3D-Printed Denuder System.

机构信息

Stable Isotope Laboratory of Ice Core and Atmospheric Chemistry, School of Earth and Spaces Sciences, University of Science and Technology of China, Hefei 230026, Anhui, China.

Guangdong Provincial Key Laboratory of Environmental Protection and Resources Utilization, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou 510640, China.

出版信息

Anal Chem. 2022 Sep 27;94(38):13215-13222. doi: 10.1021/acs.analchem.2c02839. Epub 2022 Sep 13.

Abstract

Being major species of atmospheric reactive nitrogen, nitrogen oxides (NO = NO + NO) have important implications for ozone and OH radical formation in addition to nitrogen cycles. Stable nitrogen isotopes (δN) of NO have been sought to track NO emissions and NO chemical reactivities in the atmosphere. The current atmospheric NO collection methods for isotopic analysis, however, largely suffer from unverified collection efficiency and/or low collection speed (<10 L/min). The latter makes it difficult to study δN(NO) in pristine regions with low NO concentrations. Here, we present a three-dimensional (3D)-printed honeycomb denuder (3DP-HCD) system, which can effectively collect atmospheric NO (a major part of NO) under a variety of laboratory and field conditions. With a coating solution consisting of 10% potassium hydroxide (KOH) and 25% guaiacol in methanol, the denuder system can collect NO with nearly 100% efficiency at flow rates of up to 70 L/min, which is 7 times higher than that of the existing method and allows high-resolution (e.g., diurnal or finer resolution) NO collection even in pristine sites. Besides, the δN of NO collected by the 3DP-HCD system shows good reproducibility and consistency with the previously tested method. Preliminary results of online NO oxidation by a chrome trioxide (CrO) oxidizer for simultaneous NO and NO collection are also presented and discussed.

摘要

作为大气中主要的活性氮物种,氮氧化物(NO=NO+NO)除了对氮循环有重要影响外,还对臭氧和 OH 自由基的形成有重要影响。稳定的氮同位素(δN)的 NO 已被用于追踪大气中的 NO 排放和 NO 化学活性。然而,目前用于同位素分析的大气 NO 收集方法在收集效率和/或收集速度(<10L/min)方面存在很大问题。后者使得难以研究低浓度 NO 的原始地区的 δN(NO)。在这里,我们提出了一种三维(3D)打印蜂窝状吸收管(3DP-HCD)系统,该系统可以在各种实验室和现场条件下有效地收集大气中的 NO(NO 的主要部分)。采用 10%的氢氧化钾(KOH)和 25%的愈创木酚在甲醇中的涂层溶液,该吸收管系统在高达 70L/min 的流速下,对 NO 的收集效率接近 100%,是现有方法的 7 倍,即使在原始地区也能实现高分辨率(例如,昼夜或更精细的分辨率)的 NO 收集。此外,3DP-HCD 系统收集的 NO 的 δN 具有良好的重现性和与先前测试方法的一致性。同时还介绍和讨论了在线用三氧化铬(CrO)氧化剂氧化 NO 以同时收集 NO 和 NO 的初步结果。

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