參考文獻 |
Acker, K., Beysens, D., Moller, D., 2008. Nitrite in dew, fog, cloud and rain water: An
indicator for heterogeneous processes on surfaces. Atmospheric Research 87, 200–212.
Aikawa, M., Hiraki, T., Shoga, M., Tamaki, M., 2005. Chemistry of fog water
collected in the Mt. Rokko area (Kobe City, Japan) between April 1997 and March 2001. Water Air and Soil Pollution 160, 373–393. •
Andrés-Hernández∗, M.D., Notholt, J., Hjorth, J., Schrems, O., 1996. A DOAS study
on the origin of nitrous acid at urban and non-urban sites. Atmospheric Environment 30, 175-180.
Asmi, E., Freney, E., Hervo, M., Picard, D., Rose, C., Colomb, A., Sellegri, K., 2012.
Aerosol cloud activation in summer and winter at puy-de-Dôme high altitude site in France. Atmospheric Chemistry and Physics 12, 589-607.
Baltensperger, U., Schwikowski, M., Jost, D.T., Nyeki, S., Gaggeler, H.W., Poulida, O., 1998. Scavenging of atmospheric constituents in mixed phase clouds at the high-alpine site jungfraujoch part I: Basic concept and aerosol scavenging by clouds. Atmospheric Environment 32, 23, 3,975–3,983.
Bey, I., Jacob, D.J., Logan, J.A., Yantosca, R.M., 2001b. Asian chemical outflow to the
Pacific in spring:Origins pathways, and budgets. Journal of Geophysical Research 106, 23,097–23,114.
Bowman, D., Balch, J.K., Artaxo, P., Bond, W.J., Carlson, J.M., Cochrane, M. A.,
D’Antonio, C.M., DeFries, R.S., Doyle, J.C., Harrison, S.P., Johnston, F.H., Keeley, J. E., Karwchuk, M.A., Kull, C.A., Marston, J.B., Moritz, M.A., Prentice, I.C., Roos, C. I., Scott, A.C., Swetnam, T.W., van der Werf, G.R., Pyne, S.J., 2009. Fire in the Earth System 324, 481–484.
Carrico, C.M., Petters, M.D., Kreidenweis, S.M., Sullivan, A.P., McMeeking, G.R.,
Levin, E.J.T., Engling, G., Malm, W.C., Collett Jr., J.L., 2010. Water uptake and chemical composition of fresh aerosols generated in open burning of biomass. Atmospheric Chemistry and Physics 10, 5,165–5,178.
Chang, S.Y., Lee, C.T., 2002. Applying GC-TCD to investigate the hygroscopic
characteristics of mixed aerosols. Atmospheric Environment 36, 1,521-1,530.
Chang, S.Y., Fang, G.C., Chou, C.C.K., Chen, W.N., 2006. Source identifications of
PM10 aerosols depending on hourly measurements of soluble components characterization among different events in Taipei Basin during spring season of 2004. Chemosphere 65, 792–801.
Chen, C.F., Liang, J.J., 2013. Integrated chemical species analysis with source-receptor modeling results to characterize the effects of terrain and monsoon on ambient aerosols in a basin. Environmental Science and Pollution Research 20, 2,867–2,881.
Cheng, S.H., Yang, L.X., Zhou, X.H., Xue, L.K., Gao, X.M., Zhou, Y., Wang, W.X.,
2011. Size-fractionated water-soluble ions, situ pH and water content in aerosol on hazy days and the influences on visibility impairment in Jinan, China. Atmospheric Environment 45, 4,631-4,640.
Chuang, M.T., Chou, C.C.K., Sopajareepom, K., Lin, N.H., Wang, J.L., Sheu, G.R.,
Chang, Y.J., Lee C.T., 2012. Characterization of aerosol chemical properties from near-source biomass burning in the northern Indochina during 7-SEAS/Dongsha experiment. Atmospheric Environment 78, 72-81.
Clegg, S.L., Brimblecombe, P., Wexler, A.S., 1998a. Thermodynamic model of the
system H+-NH4+-SO42--NO3--H2O at tropospheric temperatures. Journal of Physical Chemistry A 102, 2137–2154.
Clegg, S.L., Brimblecombe, P., Wexler, A.S., 1998b. Thermodynamic model of the
system H+-NH4+-SO42--NO3--H2O at 298.15 K. Journal of Physical Chemistry A 102, 2155–2171.
Colbeck, I. Harrison, R. M., 1984. Ozone—secondary aerosol—visibility relationships in North-West England. Science of The Total Environment 34, 87-100.
Cozic, J., Verheggen, B., Mertes, S., Connolly, P., Bower, K., Petzold,A.,
Baltensperger, U., Weingartner, E., 2007. Scavengingof black carbon in mixed phase clouds at the high alpine site Jungfraujoch, Atmospheric Chemistry and Physics, 7, 1–11.
Cozic, J., Verheggen, B., Weingartner, E., Crosier, J., Bower, K., Flynn, M., Coe, H.,
Henning, S., Steinbacher, M., Coen, M., Collaud Petzold, A., Baltensperger, U., 2008. Chemical composition of free tropospheric aerosol for PM1 and coarse mode at the high alpine site Jungfraujoch. Atmospheric Chemistry amd Physics 8, 407-423.
Deng, C., Zhuang, G., Huang, K., Li, J., Zhang, R., Wang, Q., Sun, Y., Guo, Z., Wang, Z., 2011. Chemical characterization of aerosols at the summit of Mountain Tai in the middle of central east China. Atmospheric Chemistry and Physics 11, 7,319-7,332.
Drewnick, F., Schwab, J.J., Hogrefe, O., Peters, S., Husain, L., Diamond, D., Weber,
R., Demerjian, K.L., 2003. Intercomparison and evaluation of four semi-continuous PM2.5 sulfate instruments. Atmospheric Environment 37, 3,335-3,350.
Dusek, U., Frank, G., Massling, A., Zeromskiene, K., Iinuma, Y., Schmid, O., Helas,
G., Hennig, T., Wiedensohler, A., Andreae, M., 2011. Water uptake by biomass
burning aerosol at sub-and supersaturated conditions: closure studies and
implications for the role of organics. Atmospheric Chemistry and Physics 11,
9,519-9,532.
Engelhart, G., Hennigan, C., Miracolo, M., Robinson, A., Pandis, S., 2012. Cloud
condensation nuclei activity of fresh primary and aged biomass burning aerosol. Atmospheric Chemistry and Physics 12, 7,285-7,293.
Frank, N., 2006. Retained Nitrate, Hydrated Sulfates, and Carbonaceous Mass in
Federal Reference Method Fine Particulate Matter for Six Eastern U.S. Cities. Journal of the Air and Waste Management Association 56, 500-511.
Feng, J.L., Guo, Z.G., Zhang, T.R., Yao, X.H., Chan, C.K., Fang, M., 2012. Source
and formation of secondary particulate matter in PM2.5 in Asian continental outflow. Journal of Geophysical Research 117, D03302, 1-11.
Fountoukis, C., Nenes, A., 2007. ISORROPIA II: a computationally efficient Thermodynamic equilibrium model for K+-Ca2+-Mg2+-NH4+-Na+-SO42--NO3--Cl--H2O aerosols. Atmospheric Chemistry and Physics 7, 4,639–4,659.
Fu, K., Liang, D., Wang, W., Cheng, Y., Gong, S., 2012. Multi-component atmospheric aerosols prediction by a multi-functional MC-HDMR approach. Atmospheric Research 113, 43–56.
Gao, X., Xue, L., Wang, X., Wang, T., Yuan, C., Gao, R., Zhou, Y., Nie, W., Zhang, Q.,
Wang, W., 2012. Aerosol ionic components at Mt. Heng in central southern China: abundances, size distribution, and impacts of long-range transport. Science of The Total Environment 433, 498-506.
Genfa, Z., Slanina, S., Boring, C.B., Jongejan, Piet, A.C., Dasgupta, P.K., 2003.
Continuous wet denuder measurements of atmospheric nitric and nitrous acids during the 1999 Atlanta Supersite, Atmospheric Environment 37, 1,351-1,364.
Gülsoy, G., Tayanç, M., Ertürk, F., 1999. Chemical analyses of the major ions in the precipitation of Istanbul, Turkey 105, 273-280.
Gunthe, S. S., Rose, D., Su, H., Garland, R. M., Achtert, P., Nowak, A., Wiedensohler A., Kuwata, M., Takegawa, N., Kondo, Y., Hu, M., Shao, M., Zhu, T., Andreae, M. O., Pöschl. U., 2011. Cloud condensation nuclei (CCN) from fresh and aged air pollution in the megacity region of Beijing. Atmospheric Chemistry and Physics 11, 9,959-9,997.
Gillani, N. V., Meagher. J. F., Valente. R. J., Imhoff. R. E., Tanner. R. L., Luria M., 1998. Relative production of ozone and nitrates in urban and rural power plant plumes 1. Composite results based on data from 10 field measurement days, Journal of Geophysical Research 103, 22,593–22,615.
Hao, L., Romakkaniemi, S., Kortelainen, A., Jaatinen, A., Portin, H., Miettinen, P.,
Komppula, M., Leskinen, A., Virtanen, A., Smith, J.N., Sueper, D., Worsnop, D.R., Lehtinen, K.E., Laaksonen, A., 2013. Aerosol chemical composition in cloud events by high resolution time-of-flight aerosol mass spectrometry. Environment Science and Technology 47, 2,645–2,653.
Henning, S., Weingartner, E., Schwikowski, M., Ga¨ggeler, H. W., Gehrig, R., Hinz,
K. P., Trimborn, A., Spengler, B., and Baltensperger U., 2003. Seasonal variation of water-soluble ions of the aerosol at the high-alpine site Jungfraujoch (3580 m asl). Journal of Geophysical Research 108, 4030.
Hogrefe, O., Schwab, J.J., Drewnick, F., Lala, G.G., Peters, S., Demerjian, K.L., Rhoads. K., Felton, H.D., Rattigan, O.V., Husain, L., Dutkiewicz, V.A., 2004. Semicontinuous PM2.5 sulfate and nitrate measurements at an urban and a rural location in New York: PMTACS-NY summer 2001 and 2002 campaigns. Air & Waste Management Association 54, 1,040–1,060.
Huang, X. Qiu, R. Chan, C.K., Pathak, R. K., 2011. Evidence of high PM2.5 strong
acidity in ammonia-rich atmosphere of Guangzhou, China: Transition in pathways of ambient ammonia to form aerosol ammonium at [NH4+]/[SO42–] =1.5. Atmospheric Research 99, 488–495.
Hsu, N., Herman, J., 2003. Radiative impacts from biomass burning in the presence of
clouds during boreal spring in southeast Asia. Geophysical Research Letters 30, 1,224.
IPCC, 2007. Climate Change 2007, IPCC Fourth Assessment Report, Cambridge
University Press, New York.
Kim, J.S., Kim, Y.J., Park, K., 2011. Measurements of hygroscopicity and volatility of
atmospheric ultrafine particles in the rural Pearl River Delta area of China. Atmospheric Environment 45, 4,661-4,670.
Kivekäs, N., Sun, J., Zhan, M., Kerminen, V. M., Hyvärinen, A., Komppula, M.,
Viisanen, Y., Hong, N., Zhang, Y., Kulmala, M., Zhang, X. C., Deli-Geer, Lihavainen, H., 2009. Long term particle size distribution measurements at Mount Waliguan, a high-altitude site in inland China. Atmospheric Chemistry and Physics 9, 5,461-5,474.
Komppula, M., Lihavainen, H., Hyvärinen, A.P., Kerminen, V.M., Panwar, T. S.,
Sharma, V.P., Viisanen, Y., 2009. Physical properties of aerosol particles at a Himalayan background site in India. Journal of Geophysical Research 114, 12,202.
Koren. I., Remer, L.A., Longo. K., 2007. Reversal of trend of biomass burning in the
Amazon. Geophysical Research Letters 34, L20404.
Krivacsy, Z., Hoffer, A., Sarvari, Zs., Temesi, D., Baltensperger, U., Nyeki, S.,
Weingartner, E., Kleefeld, S., Jennings, S. G., 2001. Role of organic and black carbon in the chemical composition of atmospheric aerosol at European background sites. Atmospheric Environment 35, 6,231–6,244.
Lee, T., Yu, X.Y., Kreidenweis, S.M., Malm, W.C., Collett, J.L., 2008. Semi-continuous measurement of PM2.5 ionic composition at several rural locations in the United States. Atmospheric Environment 42, 6,655–6,669.
Lee, A.K.Y., Hayden, K.L., Herckes, P., Leaitch, W.R., Liggio, J., Macdonald,
A.M., Abbatt, J.P.D, 2012. Characterization of aerosol and cloud water at a mountain site during WACS 2010: secondary organic aerosol formation through oxidative cloud processing. Atmospheric Chemistry and Physics 12, 7,103–7,116.
Lee, C.T., Hsu, W.C., 1998. A novel method to measure aerosol water mass. Journal
of Aerosol Science 29, 827-837.
Lee, C.T., Hsu, W.C., 2000. The measurement of liquid water mass associated with
collected hygroscopic particles. Journal of Aerosol Science 31, 189–197.
Lee, C.T., Chang, S.Y., 2002. A GC-TCD method for measuring the liquid water mass
of collected aerosols. Atmospheric Environment 36, 1,883-1,894.
Lee, C.T., Chuang, M.T., Lin, N.H., Wang, J.L., Sheu, G.R. Chang, S.C., Wang, S.H.,
Huang, H., Chen, H.W., Liu, Y.L., Weng, G.H., Lai, H.Y., Hsu, S.P., 2011. The enhancement of PM2.5 mass and water-soluble ions of biosmoke transported from Southeast Asia over the Mountain Lulin site in Taiwan. Atmospheric Environment 45, 5,784-5,794.
Lundgren, D.A., Burton, 1995. Effect of particle size distribution on the cut point between fine and coarse ambient mass fractions. Inhalation Toxicology 7,
131-148.
Mangelson, N.F., Lewis, L., Joseph, J.M., Cui, W., Machir, J., Williams, N.W.,
Eatough, D. J., Rees, L. B., Wilkerson, T., Jensen, D. T., 1997. The contribution
of sulfate and nitrate to atmospheric fine particles during winter inversion fogs in
cache valley, utah. Journal of the Air & Waste Management Association, 47, 167-175.
Moore, R.H., Raatikainen, T., Langridge, J.M., Bahreini, R., Brock, C.A., Holloway, J.S., Lack, D.A., Middlebrook, A.M., Perring, A.E., Schwarz, J.P., Spackman, J.R. Nenes, A., 2010. CCN Spectra, Hygroscopicity, and Droplet Activation Kinetics of Secondary Organic Aerosol Resulting from the 2010 Deepwater Horizon Oil Spill. JOURNAL OF GEOPHYSICAL RESEARCH 117, D00V12.
Mwaniki, G.R., Rosenkrance, C., Wallace, H. W., Jobson, B.T., Erickson, M.H., Lamb B.K., Hardy, R. J., Zalakeviciute, R., VanReken, T.M., 2014. Factors contributing to elevated concentrations of PM2.5 during wintertime near Boise, Idaho. Atmospheric Pollution Research 5, 96-103.
Lack, A.M. Middlebrook, A.E. Perring, J.P. Schwarz, J.R. Spackman, and A. NenesMwaniki, G.R., Rosenkrance, C., Wallace, W.H., Jobson, B.T., Erickson, M. H., Lamb, B. K., Hardy R. J., Zalakeviciute, R., VanReken, T.M., 2014. Factors contributing to elevated concentrations of PM2.5 during wintertime near Boise, Idaho. Atmospheric Pollution Research 5, 96‐103.
Ng, N.L., Herndon, S. C., Trimborn, A., Canagaratna, M.R., Croteau, P.L., Onasch,
T.B., Sueper, D., Worsnop, D.R., Zhang, Q., Sun, Y.L., Jayne, J.T., 2011. An
Aerosol Chemical Speciation Monitor (ACSM) for Routine Monitoring of the Composition and Mass Concentrations of Ambient Aerosol 45, 780-794.
Ohta, S., Okita, T., 1990. A Chemical Characterization of Atmospheric Aerosol in Sapporo. Atmospheric Environment, 24A, 815-822.
Orsini, D.A., Ma, Y., Sullivan, A., Sierau, B., Baumann, K., Weber, R.J., 2003.
Refinements to the particle-into-liquid sampler (PILS) for ground and airborne measurements of water soluble aerosol composition. Atmospheric Environment 37, 1,243-1,259.
Ou Yang, C.F., Lin, N.H., Sheu, G.R., Lee, C.T., Wang, J.L., 2012. Seasonal and
diurnal variations of ozone at a high-altitude mountain baseline station in East Asia. Atmospheric Environment. 46, 279-288.
Park, R.S., Lee, S.J., Shin, S.K., Song, C.H., 2013. Contribution of ammonium nitrate to aerosol optical depth and direct radiative forcing by aerosols over East Asia. Atmospheric Chemistry and Physics 13, 19,193–19,235.
Pathak, R.K., Louie, P.K.K., Chan, C.K., 2004. Characteristics of aerosol acidity in
Hong Kong. Atmospheric Environment 38, 2,965–2,974.
Pathak, R.K., Wu, W.S., Wang, T., 2008. Summertime PM2.5 ionic species
in four major cities of China: Nitrate formation in an ammonia– deficient atmosphere. Atmospheric Chemistry and Physics Discussions 8, 11,487–11,517.
Pathak, R.K., Wu, W.S., Wang, T., 2009. Summertime PM2.5 ionic species in four
major cities of China: nitrate formation in an ammonia-deficient atmosphere. Atmospheric Chemistry and Physics 9, 1,711–1,722.
Pathak, R.K., Wang, T., Ho, K.F., Lee, S.C., 2011. Characteristics of summertime
PM2.5 organic and elemental carbon in four major Chinese cities: Implications of high acidity for water-soluble organic carbon (WSOC). Atmospheric Environment 45, 318-325.
Petters, M.D., Kreidenweis, S.M., 2007. A single parameter representation of
hygroscopic growth and cloud condensation nucleus activity. Atmospheric Chemistry and Physics 7, 1,961-1,971.
Pierce, J. R., Chen, K., Adams, P. J., 2007. Contribution of primary carbonaceous aerosol to cloud condensation nuclei: processes and uncertainties evaluated with a global aerosol microphysics model, Atmospheric Chemistry and Physics 7, 5,447–5,466.
Ram, K., Sarin, M.M., 2011. Day–night variability of EC, OC, WSOC and inorganic
ions in urban environment of Indo-Gangetic Plain: Implications to secondary aerosol formation. Atmospheric Environment 45, 460–468.
Rengarajan, R., Sudheer, A.K., Sarin, M.M., 2011. Aerosol acidity and secondary
organic aerosol formation during wintertime over urban environment in western India. Atmospheric Environment 45, 1,940-1,945.
Roberts, G. C., Day, D. A., Russell, L. M., Dunlea, E. J., Jimenez, J. L., Tomlinson, J. M., Collins, D. R., Shinozuka, Y., Clarke, A. D., 2010. Characterization of particle cloud droplet activity and composition in the free troposphere and the boundary layer during INTEX-B. Atmospheric Chemistry and Physics 10, 6,627–6,644.
Ryerson, T. B., Trainer, M., Holloway, J. S., Parrish, D. D., Huey, L. G., Sueper, D. T., Frost, G. J., Donnelly, S. G., Schauffler, S., Atlas, E. L., Kuster, W. C., Goldan, P. D., Hubler, G., Meagher, J. F., Fehsenfeld, F.C., 2001. Observations of Ozone Formation in Power Plant Plumes and Implications for Ozone Control Strategies. Science 292, 719-723.
Ryu, S. Y., Kwon, B. G., Kim, Y. J., Kim, H. H., Chun, K. J., 2006. Characteristics of
biomass burning aerosol and its impact on regional air quality in the summer of 2003 at Gwangju, Korea. Atmospheric Research 84, 362-373.
Schlager, H., Arnold, F., Hofmann, D., Deshler, T., 1990. Balloon observations of nitric–acid aerosol formation in the Arctic stratosphere 1. Gaseous nitric–acid. Geophysical Research Letters 17, 1,275–1,278.
Seinfeld, J.H., Pandis, S.N., 2006. Atmospheric Chemistry and Physics: From Air Pollution to Climate Change..
Sheu, G.R., Lin, N.H., Wang, J.L., Lee, C.T., Ou Yang, C.F., Wang, S.H., 2010. Temporal distribution and potential sources of atmospheric mercury measured at a high-elevation background station in Taiwan. Atmospheric Environment 44, 2,393-2,400.
Shon, Z.H., Kim, K. H., Song, S. K., Jung, K., Kim, N.J., Lee, J. B., 2012.
Relationship between water-soluble ions in PM2.5 and their precursor gases in Seoul megacity. Atmospheric Environment 59, 540-550
Solomon, S., Portmann. R. W., Garcia. R. R., Thomason. L. W., Poole, L. R., McCormic, M. P., 1984. The role of aerosol variations in anthropogenic ozone depletion at northern midlatitudes. Journal of Geophysical Research: Atmospheres 101, 6,713–6,727.
Spracklen, D. V., Carslaw, K. S., P¨oschl, U., Rap, A., Forster, P. M., 2011. Global cloud condensation nuclei influenced by carbonaceous combustion aerosol, Atmospheric Chemistry and Physics 11, 9067–9087.
Streets, D. G., Yarber, K. F., Carmichael, G. R., 2003. Biomass burning in Asia:
Annual and seasonal estimates and atmospheric emissions. Global Biogeochemical Cycles 17, 1099.
Tang, I.N., 1980. Deliquescence properties and particle size change of hygroscopic
aerosols. In generation of aerosols and facilities for exposure experiments , Ann Arbour Science Publishers 7, 153–167.
Truex, T. J., Pierson, W. R., Mckee, D. E., 1980. Sulfate in diesel exhaust. Environmental Science and Technology 14, 1,118–1,121.
Venzac, H., Sellegri, K., Villani, P., Picard, D., Laj, P., 2009. Seasonal variation of
aerosol size distributions in the free troposphere and residual layer at the puy de Dôme station, France. Atmospheric Chemistry and Physics 9, 1,465-1,478.
Voutsa, D., Samara, C., Manoli, E., Lazarou, D., Tzoumaka, P., 2014. Ionic composition of PM2.5 at urban sites of northern Greece: secondary inorganic aerosol formation. Environmental Science and Pollution Research 7, 4,995-5,006.
Wang, Y., Guo, J., Wang, T., Ding, A., Gao, J., Zhou, Y., Collett, Jr., J.L., Wang, W.,
2011. Influence of regional pollution and sandstorms on the chemical composition of cloud/fog at the summit of Mt. Taishan in northern China. Atmospheric Research 99, 434–442.
Xue, J., Lau, A.K.H, Yu, J.Z., 2011. A study of acidity on PM2.5 in Hong Kong using
online ionic chemical composition measurements. Atmospheric Environment 45, 7,081–7,088.
Yao, X.H., Chan, C.K., Fang, M., Cadle, S., Chan. T., Mulawa, P., He, K., Ye, B., 2002. The water-soluble ionic composition of PM2.5 in Shanghai and Beijing, China. Atmospheric Environment 36, 4,223-4,234.
Yao, X.H., Ling, T.Y., Fang, M., Chan, C.K., 2006. Comparison of thermodynamic
predictions for in situ pH in PM2.5. Atmospheric Environment 40, 2,835–2,844.
Yao, X.H., Shairsingh, K., Lam, P.H., Evans, G.J., 2009. Underestimation of sulfate
concentration in PM2.5 using a semi-continuous particle instrument based on ion chromatography. Journal of Environmental Monitoring 11, 1,292-1,297.
Zhang, T., Cao, J.J., Tie, X.X., Shen, Z.X., Liu, S.X., Ding, H., Han, Y.M., Wang,
G.H., Ho, K.F., Qiang, J., Li, W.T., 2011. Water-soluble ions in atmospheric aerosols measured in Xi′an, China: Seasonal variations and sources 102, 110-119.
Zhang, L., Jacob, D. J., Knipping, E. M., Kumar, N., Munger, J. W., Carouge, C. C.,
van Donkelaar, A., Wang, Y. X., and Chen, D., 2012. Nitrogen deposition to the United States: distribution, sources, and processes, Atmospheric Chemistry and Physics 12, 4,539–4,554.
Zhang, Q., Tie, X., Lin, W., Cao, J., Quan, J., Ran, L., Xu, W., 2013. Variability of SO2 in an intensive fog in North China Plain: Evidence of high solubility of SO2, Atmospheric Environment 11, 41-47.
Zhou,Y., Xuea, L., Wang, T., Gao, X., Wang, Z., Wang, X., Zhang, J., Zhang, Q., Wang, W., 2012. Characterization of aerosol acidity at a high mountain site in central eastern China, Atmospheric Environment 51, 11-20.
行政院環境保護署環境檢驗所,2004。環境檢驗方法偵測極限測定指引(NIEA-PA107)。
許紹鵬,2010,鹿林山背景大氣及受生質燃燒事件影響的氣膠化學特性。國立中央大學環境工程研究所碩士論文。
張佑嘉,2011,中南半島近污染源生質燃燒氣膠特性及其傳輸演化與東沙島氣膠特性。國立中央大學環境工程研究所碩士論文。
許博閔,2011。鹿林山大氣背景站不同氣團氣膠光學特性。國立中央大學環境工程研究所碩士論文。
林書暉,2013。2011年不同來源氣團鹿林山氣膠水溶性無機離子動態變化。國立中央大學環境工程研究所碩士論文。
巫學蒼,2013。2012年越南山羅高地生質燃燒期間氣膠特性及2003-2012年台灣鹿林山氣膠來源解析。國立中央大學環境工程研究所碩士論文。
葉宗鑫,2014。東南亞生質燃燒源區及下風區氣膠與雲凝結核特性探討:泰北安康山與台灣鹿林山之比較分析。國立中央大學大氣物理研究所碩士論文。
洪國鈞,2014。中南半島生質燃燒源區與傳輸下風鹿林山氣膠特性及來源解析。國立中央大學環境工程研究所碩士論文。
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