A device for sampling and determination of total particulate mercury in ambient air

被引:77
作者
Lu, JY
Schroeder, WH
Berg, T
Munthe, J
Schneeberger, D
Schaedlich, F
机构
[1] Environm Canada, Atomospher Environm Serv, Toronto, ON M3H 5T4, Canada
[2] Norwegian Inst Air Res, N-2007 Kjeller, Norway
[3] Swedish Environm Res Inst, IVL, S-40258 Gothenburg, Sweden
[4] Tekran Inc, Toronto, ON M3A 1A3, Canada
关键词
D O I
10.1021/ac971278l
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A miniaturized device, which serves as both particulate trap and pyrolyzer for airborne particulate mercury species, is described. It has been used in combination with amalgamation/thermal desorption/cold vapor atomic fluorescence spectrometry detection for the determination of total particulate mercury(TPM) associated with atmospheric aerosols, A standard reference material (SRM 1633b, NIST) has been used for validating of the pyrolysis technique, and a relative error smaller than 3% has been obtained. Contrary to most methods currently employed, this new technique does not require any sample preparation (e,g., extraction/digestion), no manual sample transfer or sample handling, and no addition of chemicals or reagents. Hence the risk of contamination is low. The time for complete analysis is less than 10 min per sample. The concentrations of TPM determined in metropolitan Toronto ranged from 3 to 91 pg m(-3) with standard deviations of <+/-2 pg m(-3) for simultaneous sets of four samples. These atmospheric TPM concentration values fall within the range reported in the literature. Good agreement was obtained by the three methods compared in a held study at Ny-Alesund (78 degrees 54'N, 11 degrees 53'E), Svalbard. The elevated values of TPM concentrations obtained using the method developed in this work may arise from the Arctic springtime conversion of atmospheric mercury from gas-phase to particulate-phase Hg species.
引用
收藏
页码:2403 / 2408
页数:6
相关论文
共 33 条
[1]   STEPWISE THERMAL-ANALYSIS TECHNIQUE FOR ESTIMATING MERCURY PHASES IN SOILS AND SEDIMENTS [J].
AZZARIA, LM ;
AFTABI, A .
WATER AIR AND SOIL POLLUTION, 1991, 56 :203-217
[2]  
BELOZOVSKII AB, 1972, KHIM KHIM TEKHNOL, V15, P368
[3]   Determination of mercury binding forms in contaminated soils: Mercury pyrolysis versus sequential extractions [J].
Biester, H ;
Scholz, C .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1997, 31 (01) :233-239
[4]   DETERMINATION OF VOLATILE MERCURY SPECIES AT THE PICOGRAM LEVEL BY LOW-TEMPERATURE GAS-CHROMATOGRAPHY WITH COLD-VAPOR ATOMIC FLUORESCENCE DETECTION [J].
BLOOM, N ;
FITZGERALD, WF .
ANALYTICA CHIMICA ACTA, 1988, 208 (1-2) :151-161
[5]   SELECTIVE ABSORPTION TUBES AND EMISSION TECHNIQUE FOR DETERMINATION OF AMBIENT FORMS OF MERCURY IN AIR [J].
BRAMAN, RS ;
JOHNSON, DL .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1974, 8 (12) :996-1003
[6]   MERCURY IN PRECIPITATION AND AMBIENT AIR A NEW SCENARIO [J].
BROSSET, C ;
LORD, E .
WATER AIR AND SOIL POLLUTION, 1991, 56 :493-506
[7]   MEASUREMENTS OF ATMOSPHERIC MERCURY CONCENTRATIONS IN NORTHWESTERN AND CENTRAL-EUROPE - COMPARISON OF EXPERIMENTAL-DATA AND MODEL RESULTS [J].
EBINGHAUS, R ;
KOCK, HH ;
JENNINGS, SG ;
MCCARTIN, P ;
ORREN, MJ .
ATMOSPHERIC ENVIRONMENT, 1995, 29 (22) :3333-3344
[8]  
EBINGHAUS R, IN PRESS Z ATMOS ENV
[9]   ATMOSPHERIC CYCLING AND AIR-WATER EXCHANGE OF MERCURY OVER MIDCONTINENTAL LACUSTRINE REGIONS [J].
FITZGERALD, WF ;
MASON, RP ;
VANDAL, GM .
WATER AIR AND SOIL POLLUTION, 1991, 56 :745-767
[10]   MERCURY EMISSION FROM A CEMENT FACTORY AND ITS INFLUENCE ON THE ENVIRONMENT [J].
FUKUZAKI, N ;
TAMURA, R ;
HIRANO, Y ;
MIZUSHIMA, Y .
ATMOSPHERIC ENVIRONMENT, 1986, 20 (12) :2291-2299