大气与环境光学学报 ›› 2026, Vol. 21 ›› Issue (5): 747-758.doi: 10.3969/j.issn.1673-6141.2026.05.004

• 环境光学监测技术 • 上一篇    

N2O5在线动态合成源技术研究

魏龙生 1,2, 谢品华 1,2*, 胡仁志 2*, 林川 2, 蔡浩天 2, 陈璐瑶 1,2   

  1. 1 中国科学技术大学环境科学与光电技术学院, 安徽 合肥 230026; 2 中国科学院合肥物质科学研究院安徽光学精密机械研究所, 中国科学院环境光学与技术重点实验室, 安徽 合肥 230031
  • 收稿日期:2026-06-04 修回日期:2026-07-06 接受日期:2026-07-07 出版日期:2026-09-28 发布日期:2026-09-30
  • 通讯作者: E-mail: phxie@aiofm.ac.cn; rzhu@aiofm.ac.cn E-mail:phxie@aiofm.ac.cn
  • 作者简介:魏龙生 (2000- ), 安徽合肥人, 硕士研究生, 主要从事精密环境监测仪器设计方面的研究。E-mail: lswei@aiofm.ac.cn
  • 基金资助:
    国家重点研发计划 (2022YFC3700302, 2023YFC3705502), 国家自然科学基金重点项目 (42030609)

Research on N2O5 online dynamic generation source

WEI Longsheng1,2, XIE Pinhua1,2*, HU Renzhi2*, LIN Chuan2, CAI Haotian2, CHEN Luyao1,2   

  1. 1 School of Environmental Science and Optoelectronic Technology, University of Science and Technology of China, Hefei 230026, China; 2 Key Laboratory of Environmental Optics and Technology, Anhui Institute of Optics and Fine Mechanics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China
  • Received:2026-06-04 Revised:2026-07-06 Accepted:2026-07-07 Online:2026-09-28 Published:2026-09-30

摘要: 五氧化二氮 (N2O5) 是夜间大气中重要的活性氮物种, 其准确探测对于认识夜间大气化学过程具有重要意义。 为满足化学电离质谱 (CIMS)、腔衰荡光谱 (CRDS) 等技术系统标定对N2O5合成源的需求, 本文基于O3与NO2的快速 气相反应原理, 研制了一套N2O5在线动态合成源。该合成源采用低质量浓度O3 (数十μg/m3) 与高质量浓度NO2 (数百 μg/m3) 相结合的动态合成策略, 以降低合成源中残余O3的背景干扰并提高N2O5/NO3比值。为实现低质量浓度O3的稳 定可控生成, 本文设计了一种基于机械遮光结构的臭氧发生器, 并结合盒子模型模拟与实验结果, 对反应停留时间及 NO2输入条件进行了优化。实验结果表明, 所构建的N2O5动态合成源具有良好的输出稳定性 (质量浓度波动范围控制 在1%以内)。最后, 利用此合成源标定了N2O5在外径6.35 mm可熔性聚四氟乙烯 (PFA) 管内的损失速率, 测得一阶损 失速率为 (0.018 ± 0.002) s−1, 表明本文研制的N2O5动态合成源能够满足相关采样损失标定实验的应用需求。

关键词: N2O5动态合成源, 低O3质量浓度调控, 低O3/NO2比值策略, 标定应用

Abstract: Objective Dinitrogen pentoxide (N2O5) is a crucial reactive nitrogen species in the nocturnal atmosphere, serving as a primary driver of nocturnal atmospheric oxidative capacity and regional nitrogen cycling. Consequently, high-precision measurement of N2O5 is essential for elucidating nighttime atmospheric processes. Reliable calibration using a stable and controllable N2O5 source is essential for evaluating the performance of analytical techniques such as chemical ionization mass spectrometry (CIMS) and cavity ring-down spectroscopy (CRDS), particularly for assessing N2O5 sampling and transmission losses. However, generating N2O5 at controlled and reproducible concentrations for instrument calibration remains challenging because its generation involves the rapid reaction of NO2 with O3 to produce NO3, followed by the reaction of NO3 with NO2 to form N2O5. Therefore, the generated N2O5 may coexist with residual O3 and NO3, with excessive O3 potentially causing analytical interference and NO3 affecting the accuracy of N2O5 quantification. To address this challenge, this study aimed to develop an online dynamic N2O5 generation source based on the controlled gas-phase reaction of O3 and NO2 and to evaluate its stability in N2O5 generation and applicability in quantitative characterizing N2O5 sampling losses. Methods The online dynamic N2O5 generation source was developed using a controlled gas-phase synthesis approach based on the reactions between O3 and NO2. A low-O3/high-NO2 generation strategy was adopted to promote N2O5 formation while minimizing the residual O3 concentration and increasing the N2O5/NO3 ratio. To enable stable and controllable generation of low-concentration O3, an ozone generator equipped with a mechanically adjustable shading structure was designed. The O3 output was regulated by adjusting the shading section, thereby providing a flexible means to control the concentration of O3 supplied to the N2O5 generation system. The effects of reaction residence time and NO2 input conditions on N2O5 generation were systematically investigated using a combination of box-model simulations and laboratory experiments. The optimal generation conditions were subsequently determined by considering N2O5 production together with the concentrations of residual O3 and NO3. Under the optimized conditions, the N2O5 output was continuously monitored to evaluate the temporal stability and repeatability of the generation source. Finally, the developed N2O5 source was coupled to a 6.35 mm perfluoroalkoxy (PFA) sampling tube, and N2O5 transmission loss in the PFA tube was evaluated under different sampling conditions by determining the corresponding first-order wall-loss rate constant. Results and discussion The developed online N2O5 generation source achieved stable and controllable N2O5 generation under low-O3/high-NO2 conditions. The mechanically adjustable shading structure enabled effective regulation of the O3 output with a mass concentration of several tens of μg/m3. Under these conditions, the relatively high NO2 mass concentration favored N2O5 formation while limiting the amount of excess O3 remaining in the reaction mixture. Box-model simulations combined with laboratory experiments were used to optimize the reaction residence time and NO2 input conditions, yielding the operating conditions that support stable N2O5 production. Under the optimized conditions, the concentration of N2O5 generated could remain stable during continuous operation, with concentration fluctuations within 1%. The developed source was subsequently coupled to a 6.35 mm PFA sampling tube to evaluate N2O5 transmission loss under sampling conditions. The corresponding first-order wall-loss rate constant was determined to be (0.018 ± 0.002) s−1, which is comparable to previously reported values, indicating that the developed N2O5 generation source can provide sufficiently stable N2O5 concentration for the quantitative characterization of sampling losses and the evaluation of N2O5 transmission efficiency in sampling systems. Conclusions An online dynamic N2O5 generation source was successfully developed using a controlled gas-phase reaction system involving O3 and NO2. The combination of a mechanically adjustable O3 generation structure and a low-O3/high-NO2 synthesis strategy enabled stable and controllable N2O5 production while minimizing residual O3 and increasing the N2O5/ NO3 ratio. Under the optimized operating conditions, the generated N2O5 concentration exhibited excellent temporal stability, with fluctuations maintained within 1% during continuous operation. Application of the developed source to a 6.35 mm PFA sampling tube yielded a first-order N2O5 wall-loss rate constant of (0.018 ± 0.002) s−1, demonstrating the practicality of the source in quantitative characterizing N2O5 sampling losses. Overall, the developed source provides a practical and stable platform for controlled N2O5 generation and sampling-loss characterization, with potential applications in the calibration and performance evaluation of atmospheric N2O5 measurement systems, including CIMS, CRDS, and related techniques.

Key words: N2O5 dynamic generation source, low-concentration O3 regulation, low-O3/high-NO2 strategy, calibration application

中图分类号: