Development of a Bioaerosol single particle detector (BIO IN) for the Fast Ice Nucleus CHamber FINCH

被引:24
作者
Bundke, U. [1 ]
Reimann, B. [1 ]
Nillius, B. [1 ]
Jaenicke, R. [2 ]
Bingemer, H. [1 ]
机构
[1] Goethe Univ Frankfurt, Inst Atmospher & Environm Sci, Frankfurt, Germany
[2] Johannes Gutenberg Univ Mainz, Inst Phys Atmosphere, Mainz, Germany
关键词
CONTACT FREEZING MODES; ATMOSPHERIC PROCESSES; NUCLEATING ABILITY; FLUORESCENCE SPECTROMETER; BIOLOGICAL AEROSOLS; MICROBIOLOGY; POLLEN; SIZE; ULTRAVIOLET; IMMERSION;
D O I
10.5194/amt-3-263-2010
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
In this work we present the setup and first tests of our new BIO IN detector. This detector was constructed to classify atmospheric ice nuclei (IN) for their biological content. It is designed to be coupled to the Fast Ice Nucleus CHamber FINCH. If one particle acts as an ice nucleus, it will be at least partly covered with ice at the end of the development section of the FINCH chamber. The device combines an auto-fluorescence detector and a circular depolarization detector for simultaneous detection of biological material and discrimination between water droplets, ice crystals and non activated large aerosol particles. The excitation of biological material with UV light and analysis of auto-fluorescence is a common principle used for flow cytometry, fluorescence microscopy, spectroscopy and imaging. The detection of auto-fluorescence of airborne single particles demands some more experimental effort. However, expensive commercial sensors are available for special purposes, e.g. size distribution measurements. But these sensors will not fit the specifications needed for the FINCH IN counter (e.g. high sample flow of up 10 LPM). The newly developed -low cost- BIO IN sensor uses a single high-power UV LED for the electronic excitation instead of much more expensive UV lasers. Other key advantages of the new sensor are the low weight, compact size, and the little effect on the aerosol sample, which allows it to be coupled with other instruments for further analysis. The instrument will be flown on one of the first missions of the new German research aircraft "HALO" (High Altitude and LOng range).
引用
收藏
页码:263 / 271
页数:9
相关论文
共 40 条
[1]  
[Anonymous], LASERS CURRENT OPTIC
[2]  
[Anonymous], 1996, ATMOSPHERIC OCEANOGR
[3]   New Directions: The role of bioaerosols in atmospheric chemistry and physics [J].
Ariya, PA ;
Amyot, M .
ATMOSPHERIC ENVIRONMENT, 2004, 38 (08) :1231-1232
[4]   The fast Ice Nucleus chamber FINCH [J].
Bundke, U. ;
Nillius, B. ;
Jaenicke, R. ;
Wetter, T. ;
Klein, H. ;
Bingemer, H. .
ATMOSPHERIC RESEARCH, 2008, 90 (2-4) :180-186
[5]   Microbiology and atmospheric processes: chemical interactions of primary biological aerosols [J].
Deguillaume, L. ;
Leriche, M. ;
Amato, P. ;
Ariya, P. A. ;
Delort, A. -M. ;
Poeschl, U. ;
Chaumerliac, N. ;
Bauer, H. ;
Flossmann, A. I. ;
Morris, C. E. .
BIOGEOSCIENCES, 2008, 5 (04) :1073-1084
[6]  
Demchenko A.P., 1986, ULTRAVIOLET SPECTROS
[7]   The ice nucleating ability of pollen: Part II. Laboratory studies in immersion and contact freezing modes [J].
Diehl, K ;
Matthias-Maser, S ;
Jaenicke, R ;
Mitra, SK .
ATMOSPHERIC RESEARCH, 2002, 61 (02) :125-133
[8]   The ice nucleating ability of pollen - Part I: Laboratory studies in deposition and condensation freezing modes [J].
Diehl, K ;
Quick, C ;
Matthias-Maser, S ;
Mitra, SK ;
Jaenicke, R .
ATMOSPHERIC RESEARCH, 2001, 58 (02) :75-87
[9]   Microbiology and atmospheric processes: biological, physical and chemical characterization of aerosol particles [J].
Georgakopoulos, D. G. ;
Despres, V. ;
Froehlich-Nowoisky, J. ;
Psenner, R. ;
Ariya, P. A. ;
Posfai, M. ;
Ahern, H. E. ;
Moffett, B. F. ;
Hill, T. C. J. .
BIOGEOSCIENCES, 2009, 6 (04) :721-737
[10]   Design of an instrument for real-time detection of bioaerosols using simultaneous measurement of particle aerodynamic size and intrinsic fluorescence [J].
Hairston, PP ;
Ho, J ;
Quant, FR .
JOURNAL OF AEROSOL SCIENCE, 1997, 28 (03) :471-482