[1] PAN Y P , WANG Y S, ZHANG J K, et al. Redefining the importance of nitrate during haze pollution to help optimize an emission control strategy [J]. Atmospheric Environment, 2016, 141: 197-202.
[2] LIU J J, MAUZERALL D L, HOROWITZ L W. Evaluating inter-continental transport of fine aerosols: (2) Global health impact[J]. Atmospheric Environment, 2009, 43(28): 4339-4347. doi: 10.1016/j.atmosenv.2009.05.032
[3] SINGH A, DEY S. Influence of aerosol composition on visibility in megacity Delhi[J]. Atmospheric Environment, 2012, 62(1): 367-373.
[4] HAN Z W, LI J W, XIA X A, et al. Investigation of direct radiative effects of aerosols in dust storm season over East Asia with an online coupled regional climate-chemistry-aerosol model[J]. Atmospheric Environment, 2012, 54: 688-699. doi: 10.1016/j.atmosenv.2012.01.041
[5] 王跃思, 李文杰, 高文康, 等. 2013~2017年中国重点区域颗粒物质量浓度和化学成分变化趋势[J]. 中国科学:地球科学, 2020, 50(4): 453-468.
[6] 刘庆阳, 刘艳菊, 杨峥, 等. 北京城郊冬季一次大气重污染过程颗粒物的污染特征[J]. 环境科学学报, 2014, 34(1): 12-18.
[7] LI Z J, Sun Y L, Wang Q Q, et al. Nitrate and secondary organic aerosol dominated particle light extinction in Beijing due to clean air action[J]. Atmospheric Environment, 2022, 269: 118833. doi: 10.1016/j.atmosenv.2021.118833
[8] XU J, CHEN J, ZHAO N, et al. Importance of Ammonia Gas-Particle Conversion Ratio in Haze Formation in the Rural Agricultural Environment[J]. Atmospheric Chemistry and Physics, 2020, 20(12): 7259-7269. doi: 10.5194/acp-20-7259-2020
[9] ZHANG G H, BI X H, CHAN L Y, et al. Size-segregated chemical characteristics of aerosol during haze in an urban area of the Pearl River Delta region, China[J]. Urban Climate, 2013, 4: 74-84. doi: 10.1016/j.uclim.2013.05.002
[10] TIAN S L, PAN Y P, LIU Z R, et al. Size-resolved aerosol chemical analysis of extreme haze pollution events during early 2013 in urban Beijing, China[J]. Journal of Hazardous Materials, 2014, 279: 452-460. doi: 10.1016/j.jhazmat.2014.07.023
[11] TIAN S L, PAN Y P, WANG Y S. Ion balance and acidity of size-segregated particles during haze episodes in urban Beijing[J]. Atmospheric Research, 2018, 201: 159-167. doi: 10.1016/j.atmosres.2017.10.016
[12] TIAN S L, PAN Y P, WANG Y S. Size-resolved source apportionment of particulate matter in urban Beijing during haze and non-haze episodes[J]. Atmospheric Chemistry and Physics, 2016, 16(6): 9405-9443.
[13] BLANCO-ALEGRE C, CALVO A I, ALONSO-BLANCO E, et al. Evolution of size-segregated aerosol concentration in NW Spain: A two-step classification to identify new particle formation events[J]. Journal of Environmental Management, 2022, 304: 114232. doi: 10.1016/j.jenvman.2021.114232
[14] 田世丽, 潘月鹏, 刘子锐, 等. 不同材质滤膜测量大气颗粒物质量浓度和化学组分的适用性——以安德森分级采样器为例[J]. 中国环境科学, 2014, 34(4): 817-826.
[15] HUANG X J, LIU Z R, ZHANG J K, et al. Seasonal variation and secondary formation of size-segregated aerosol water-soluble inorganic ions during pollution episodes in Beijing[J]. Atmospheric Research, 2016, 168: 70-79. doi: 10.1016/j.atmosres.2015.08.021
[16] TIAN S L, PAN Y P, WANG J , et al. Concurrent measurements of size-segregated particulate sulfate, nitrate and ammonium using quartz fiber filters, glass fiber filters and cellulose membranes[J]. Atmospheric Environment, 2016, 145: 293-298.
[17] STELSON A W, SEINFELD J H. Relative humidity and temperature dependence of the ammonium nitrate dissociation constant[J]. Atmospheric Environment, 1982, 16(5): 983-992. doi: 10.1016/0004-6981(82)90184-6
[18] CHOW J C. Measurement Methods to Determine Compliance with Ambient Air Quality Standards for Suspended Particles[J]. Journal of the Air & Waste Management Association, 1995, 45(5): 320-382.
[19] LUO L, PAN Y Y, ZHU R G, et al. Assessment of the seasonal cycle of nitrate in PM2.5 using chemical compositions and stable nitrogen and oxygen isotopes at Nanchang, China [J]. Atmospheric Environment, 2020, 117371.
[20] 李红, 王峰威, 邓利群, 等. 环形溶蚀器大气颗粒物采集系统条件实验研究[J]. 中国粉体技术, 2010, 16(1): 89-92.
[21] 田世丽, 刘学军, 潘月鹏, 等. 应用扩散管测量霾污染期间大气氮硫化合物浓度的方法[J]. 环境科学, 2017, 38(9): 3605-3609.
[22] 王峰威, 李红, 柴发合, 等. 环形溶蚀器大气颗粒物采样系统条件实验研究: 涂层溶液浓度的确定[J]. 中国科技成果, 2009, 10(9): 11-14.
[23] 张攀, 仲勉, 管晶晶, 等. 应用溶蚀器/后置膜系统分析上海大气PM2.5中水溶性离子的组成及采样误差[J]. 地球化学, 2013, 42(3): 197-204.
[24] CHRISTOFOROU C S, SALMON L G, HANNIGAN M P, et al. Trends in fine particle concentration and chemical composition in southern California[J]. J Air Waste Manage, 2011, 50(1): 43-53.
[25] HE K B, YANG F M, MA Y L, et al. The characteristics of PM2.5 in Beijing, China[J]. Atmospheric Environment, 2001, 35(29): 4959-4970. doi: 10.1016/S1352-2310(01)00301-6
[26] 杨复沫, 段凤魁, 贺克斌. PM2.5的化学物种采样与分析方法[J]. 中国环境监测, 2004(5): 14-20.
[27] 田世丽, 竺夏英, 潘月鹏, 等. 华北玉米农田大气/植被界面氨气和铵盐动态变化研究[J]. 农业环境科学学报, 2018, 37(10): 2327-2333.