Document B5wRyNYxzXzEbOy9baQn8Y5wJ
4 CURRENT RESEAKU1
Evaporation Rates and Reactivities of Methylene Chloride, Chloroform, 1,1,1-Trichloroethane, Trichloroethylene, Tetrachloroethylene, and Other Chlorinated Compounds in Dilute Aqueous Solutions
W ndell L. Dllllng,''1 Nancy B. Tefertlller,2 and George J. Kallos3 The Dow Chemical Co., Midland, Mich. 48640
To estimate the persistence of low-molecular-weight chlorinated hydrocarbons in natural water bodies, we car ried out laboratory studies on the evaporation and reaction rates of the title compounds at the 1-ppm level in water under ambient conditions. All five compounds had evapo rated to the extent of 50% in less than 30 min and to 90% in less than 90 min when stirred (200 rpm) in water at '~25C in an open container. Addition of various contaminants (clay, limestone, sand, salt, peat moss, and kerosine) to the water had relatively little effect on the chlorinated com pounds' evaporation or disappearance rates. The hydro lytic-oxidative reaction half-lives for the title compounds in sealed ampules were ---6-18 months. These data indicate that 1-ppm concentrations of low-molecular-weight chlori nated hydrocarbons would not persist in agitated natural Vater bodies due to evaporation.
The fate of chlorinated methanes, ethanes, and ethylenes which may be discharged to the environment has been dis cussed briefly in the literature (1-6). An important ques tion in this regard is whether these compounds persist in natural water bodies. Reports have appeared from several laboratories (1, 2, 7-9) that low concentrations of these chlorinated compounds have been detected in river and ocean water. Three natural modes by which these materials could dissipate from natural water bodies are evaporation, adsorption on soils, and chemical reaction (hydrolysis, oxi dation). Other modes also may exist such as microbial deg radation, but we studied only the former three modes under simulated environmental conditions for the four im portant chlorinated compounds in use today as solvents, methylene chloride (CH2C12), 1,1,1 -trichloroethane (CH3CCI3), trichloroethylene (CHC)*CC12), and tetrachlo roethylene (CCI2--CC12), and also for chloroform (CHCI3). In addition, evaporation rates from water were determined for 22 other chlorinated methanes, ethanes, ethylenes, pro panes, and propylenes.
As far as we are aware no data have been published on the rate at which these four major chlorinated materials evaporate from dilute aqueous solutions. However we ob served earlier in work on analytical methods that, qualita tively, the concentrations of 1-ppm aqueous solutions of these compounds decreased significantly within several bours. Since all of these compounds are rather stable chem ically, it appeared that the decrease in then concentrations was due to evaporation, even though the initial concentre-
1 Environmental Sciences Research. 2 Chemicals Processes Re search. 3 Analytical Laboratories.
tions were well below the solubility limits. A report (10) on calculations of evaporation rates of related compounds from aqueous solution also predicted rapid losses by this route. We are unaware of any adsorption studies' of these chlorinated compounds on soils.
Nearly all of the date reported on the reactivity of these chlorinated compounds with water were obtained at tem peratures well above ambient temperatures. CH2CI2 hydro lyzed slowly at elevated temperatures to hydrogen chloride, formaldehyde, formic acid, methyl chloride, methanol, and carbon monoxide (11-15). CH3CCI3, with an extrapolated half-life of 6.9 months at 25C (16), gave mainly acetic and hydrochloric acids along with a minor amount of vinylidene chloride (16-21). CHC1TMCC12 was reported to resist hy drolysis at 100C (16, 18, 20, 22-24)', oxygen accelerated the decomposition rate (20, 22, 23). The products from di lute solution hydrolysis or oxidation have not been re ported. CCl2="CCl2 was very unreactive hydrolytically at 150C in the absence of oxygen (16, IB, 20, 23); the decom position was accelerated by oxygen (23). Trichloroacetic and hydrochloric acids have been reported as products (25) .
Experimental
Evaporation Studies. The hollow fiber-mass spectro scopic method of analysis has been described previously (26) . Solutions which contained 1.0 ppm (weight basis) each of the five chlorinated compounds were prepared as follows: CHC13 (0.67 ml), CH3CC13 (0.75 ml), CHC1--CC12 (0.68 ml), CCl2-=CCl2 (0.62 ml), and CH2C12 (0.75 ml) were made up to 100.0 ml with methanol. A 0.10-ml aliquot of this solution was made up to 1000.0 ml with purified water. Five liters of deionized water were purified by stirring with 50 grams of Witco 718 charcoal. Attempts to prepare these solutions without the methanol were not reproducible. Qualitatively, the evaporation rates of the chlorinated com pounds were nearly the same in the presence or absence of methanol.
The silicone rubber hollow fiber probe and a 200-rpm stainless steel shallow pitch propeller stirrer were posi tioned inside a 250-ml Pyrex beaker. The solution of the chlorinated compounds in water (200 ml, solution depth '-65 mm before stirring the solution) was poured into the beaker, and, after starting the stirrer, mass spectra were scanned after 1 min and periodically thereafter. The maxi mum peak height attained was considered to be equivalent to 1.0 ppm, and the subsequent concentrations were deter mined from the peak heights by assuming a linear relation ship between peak height and concentration (26). The five chlorinated compounds were determined at the following
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m/e values: CHCI3, 83; CH2CI2, 84; CH3CCI3, 97 (corrected for the contribution of the m/e 95 isotope peak due to the fragmentation of CHCl"CCl2); CHClTMCCl2, 130; CCl2"CClS) 164. The solutions were at room temperature (--25C), but were not in a constant temperature bath.
The sealed systems were stirred magnetically in a 250-mi Erlenmeyer flask (200 ml of solution) closed with a Tefloncovered rubber stopper. The hollow fiber probe was insert ed through the stopper. The additives were introduced into the sealed system after the ion peaks had reached their maximum intensity and had leveled off for 2 or 3 min. The flask was lowered from the stopper around the probe for 0.5 min to carry out the addition. The blank runs also were opened for 0.5 min t o have a valid comparison.
The evaporation rates of the other 22 chlorinated com pounds from water were determined in a similar manner. Groups of 2 to 4 of the compounds were determined simul taneously in the same solution.
Reactivity Studies. The solution which contained 1.00 ppm each of CH2CI2, CHCI3, CH3CCI3, CHCl"CCl2, and CCl2*"CCl2 was prepared as described in the previous sec tion except that the water was purged with air for 15 min just prior to the addition of the chlorinated compounds. Al iquots (15 ml) of this solution were placed in 22-mm i.d. X 53-mm (after sealing the tube) quartz tubes and 18-mm i.d. X 150-mm (after sealing the tube) Pyrex tubes. The icecooled tubes, previously constricted at the neck, were sealed. The solutions occupied 28% of the volume of the quarts tubes and 51% of the volume of the Pyrex tubes.
The Pyrex tubes were placed in a light-proof container and kept in the laboratory at --25 C. These tubes were shaken every week or two. The quartz tubes were placed horizontally in a tray on the roof of the laboratory where they were exposed to the maximum amount of sunlight available. The tubes were washed to remove soot and (or) snow and shaken once a week for a period of one year. The temperature range of these tubes was estimated to be --20 to --+40 C by periodic readings of a thermometer in the tray. Tubes were removed periodically for analysis.
Analyses were carried out as described above. The solu tions were stirred in an open beaker, and spectra were scanned at 0.5, 1.0, 2.0, 3.0, and 4.0 min. The maximum peak heights attained (usually at 0.5-2.0 min depending on the compound) were taken as proportional to the concen tration of that compound. A standard solution of 1.00 ppm of each of the five compounds was freshly prepared as above, except that the water was not aerated, and deter mined each time along with the unknown samples. An indi cation of the reproducibility of the analyses can be seen fron the following two runs on freshly prepared standard solutions. Both samples were analyzed on the same day, one at the beginning of a set of analyses and the other at the end. The first number in each set is the m/e value, the next the peak height for the first standard, and the last the peak height for the second standard: 83, 135, 132; 84, 100, 98; 97, 106,108; 130, 165, 165; 164, 128,119. A standard for each compound analyzed had to be used since the permea bilities of the fiber (and probably the spectrometer sensi tivity) to tl.'i various compounds were not always in the same ratio.
Results and Discussion
Evaporation Studies. The rates of evaporation of CH2CI2, CHCI3, CH3CCI3, CHC1--CC12, and CCl2=CCl2 from water without any other additives were determined three times over a two-week period under conditions which were as nearly alike as possible. Typical data are shown in Figure 1. The evaporation rates of all five chlorinated com pounds were nearly the same during any one run. The time
Figure 1. Evaporation rates of CH^CIj (), CHCI3 (), CH3CCI3 (O), CWCt"CCl2 (), and CCIr"CCI2 () from water
required for the chlorinated compound concentrations to be reduced by 50% varied from 21 4 min to 26 3 min, and to be reduced by 90% the time varied from 66 6 min to 85 5 min among the three runs (Table I). These varia tions apparently were due to some uncontrolled variable(s) in the experiments. The amount of water which evaporated from the solutions during these runs was not Measured, but in blank runs an average value of 20 g/day was observed. The mass spectrometer sensitivity changed with time, and the appearance of the hollo -' fiber itself was altered, de pending on the type of additives in the water which were brought into contact with the fiber in between these three standard runs. For these reasons it was deemed desirable to compare the effects of additivies in the solution on the sol vent evaporation rate only with the standard run closest in time to the additive experiment.
By using a sealed system, we showed that the loss of the chlorinated compounds, 'attributed to evaporation, could not have been due to depletion of these compounds through the hollow fiber sample probe into the mass spec trometer. There was no loss of the chlorinated compounds (<5%) within 2 hr.
The stirring speed had a marked effect on the evapora tion rates. With no stirring, except for 15 sec every 5 min, the time required for 50% depletion was >--90 min. The 15-sec stirring was required for proper operation of the hol low fibers.
Mackay and Wolkoff (10) have developed Equation 1 for
12.48 GPWCU
m
10*EPiM
predicting the evaporation rate of slightly soluble organic compounds from water; In Table II are shown the solubili ty, vapor pressure, partition coefficients, and calculated and experimental half-lives for evaporation of five chlori nated compounds. In Equation 1, r is the half-life in days,
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Table I. Evaporation Rates of Chlorinated Compounds from Dilute Aqueous Solution
Tima for evaporation from water, min
Compound
50%, r
90%
CH,CI
27
CH,CI,fl
19
19
24
CHCI,"
18
20
25
CCI4
29
CH,CH,CI
21
CH.CHCI,
22
CH,CICH,CI
29
CH,CCI,
17
20
23
CH,CICHCIj
21
CHjCICCI,
43
CHCljCHCI,
56
CHCI,CCI,
48
CCI,CCI,
45
CH,--CHCI
; 26
CH,--CCI,
22
CHCI--CHCI (eis)
18
CHCI--CHCI (irons)
24
CHCI--CCI,
TT
21 24 j
CCI,--CCI,*
24
25
28
CH,CICHCICHCI,
51
CH,CICCI,CH,Ci
47
CH,--CHCH,CI
27
CH,--CCICH,
29
CHCI--CHCH,
16
CH,--CCICHjCI
20
CHCI--CHCH,CI
31
(cis and trans)
CHCI--CCICH,Cl
49
suits of three separate runs ere given.
91 60 67 80 62 68 83 97 79 109 96 63 65 80 102 >120 >120 >140 >120 96 89 64 83 63 63 80 72 86 90 >120 >120 89 110 59 68 98
>140
Table II. Physical Properties, Partition Coefficients, and Evaporation Rates from Water of Chi rinated Compounds
Compound
Vapor pres-
Solubility sure. in water, mm
ppnr Hp
(25s) (25s)
p.rtitjon
Evaporation
coefficient* half-life, min, t
Calcdc Found^ Cslcd* Found
CH,Cl,
19,800 426 0.10 0.11 2.3 21 3
CHCI,
7,950 200 0.16 0.13 1.4 21 4
CH.CCI,
1,300 123 0.68 -- 0.34 20 3
CHCI--CCI, CCI,--CCI,
1,100 400
74 0.48
0.48 21 3
19 0.41 0.50 0.56 27 3
4 Data from "Kirk-Othmer Encyclopedia of Chemical Technol ogy," 2nd ed., interscience Publishers, New York, N.Y., 1964 (in some cates by Interpolation). *> K * Cair/Cwater- c Concn in satd air/ concn in satd water, 0 Data from E. J. Brown, Dow Chemical Co., Piaquemine, La. * Calculated from Equation 1.
(3.0%, as in seawater) may have caused about a 10% de crease in the chlorinated compound evaporation rate at 40% chlorinated compound depletion. The effect, if any, therefore, appears to be slight.
Addition of dry, granular bentonite clay (500 ppm) ap peared to increase the rate of disappearance of the chlori nated compounds by 33% at 20 min (~65% solute deple tion) (Figure 2). However, when the clay was allowed to stand in contact with purified water for several days and then added to a solution of chlorinated compounds, there was no change in rate from the standard (-'50% solute de pletion at 20 min). To determine whether the apparent in crease in the disappearance rate with dry clay was due to adsorption of the material onto the clay surface, we carried out two closed system experiments where the only solute Iobs could be by adsorption. Dry clay (375 ppm) was intro-
G is the weight of water in grams (200 for our case), Pw is the partial vapor pressure of water (23.76 mm for our case), Cif is the solubility (mgA.) of the solute in water, E is the weight in grams of water which evaporates/day (20 for our case), Pi* is the vapor pressure of the pure solute, and Mi is the molecular weight of the solute. The experimental evap oration half-lives are much longer than the calculated values. Part of the discrepancy may be due to nonuniform concentrations that arise because of depletion of the solute near the surface of the water. Uniform concentrations of solute at all times are required for Equation 1 to be valid. Faster stirring would likely lead to smaller r values since slower stirring led to larger r values. The sevenfold varia tion in the calculated t values between the compounds pre dicted to evaporate the slowest, CH2CI2, and the fastest, CH3CCI3, is not reflected in the experimental values. How ever the general conclusion of Mackay and Wolkoff (10) that the evaporation rates would be rapid is borne out.
To obtain more ecologically significant data, we studied the rate of evaporation or disappearance of the five chlori nated compounds under conditions more nearly like those found in the environment. The presence of sodium chloride
Figure 2. Disappearance rates of CH2CI2 (4), CHCI3 ( ), CHjCCIj (O), CHCI="CCI2 (), and CCIj=CCI2 (A) from watar which con
tained 500 ppm bentonite day (initially dry)
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Volume 9, Number 9, September 1975 835
Figure 3. Disappearance rates of CHj02 (4), CHCt3 (), CHaCCla (0). CHO"*CI2 (), and CCIj--CCIj (A) from water which con tained 375 ppm bentonite day (initially dry) in a sealed system
Figure 4. Disappearance rates of CHjCIj (4), CHCls ( ). CHaCCb
(O), CHCi"CClj (), and
(A) from water under a layer
of kerosine
duced into a sealed solution; in 10 min there was a --10% adsorption of the chlorinated compounds by the clay (Fig ure 3) compared to a blank. When the amount of clay added to the closed system was doubled (750 ppm) there was 22% solute adsorption after 30 min. There was no fur ther solute adsorption after this time. There appears to be relatively little selectivity among the various chlorinated compounds in the adsorption process.
Addition of dry powdered dolomitic limestone (500 ppm) caused a 50% depletion of the chlorinated compounds in 20 2 min and a 90% depletion in 70 2 min. Thus, these compounds probably are adsorbed slightly by the lime stone, but without any selectivity as also was observed with bentonite clay. Ottawa silica sand (500 ppm) did not affect the disappearance rates of the chlorinated materials; 50% depletion was observed in 27 2 min and 90% depletion in 88 3 min.
Peat moss (--500 ppm), added to simulate a high organic content in water, appeared to accelerate the disappearance rate initially, but then to slow it down toward the end of the run (90% depletion in 120 15 min). In the sealed sys tem, --500 ppm of peat moss adsorbed --40% of the chlori nated compounds in 10 min. At longer times, no further so lute removal was noted. Thus --500 ppm of peat moss rap idly removed up to --0.4 ppm each of the five chlorinated compounds when originally present at the 1-ppm level, and may account for the slight acceleration of solute loss in the open system at short times. The decrease in the rate of dis appearance of the chlorinated materials at longer time pe riods may be due to a gradual release to the solution of these chlorinated compounds by the peat moss.
Propylene glycol (15 ppm), added to simulate a chemical plant waste effluent, had no appreciable effect on the evap oration rate of the five chlorinated compounds.
Addition of 1 ml of kerosine to the surface of the water
SL
caused a decrease in the rate of disappearance of the chlori nated compounds from water (Figure 4). After 30 min, the loss of chlorinated materials from water covered with a layer of kerosine, was --47% less than that from the blank. In the sealed system, --17% of the chlorinated compounds was removed by the kerosine in 5 min (only CHC1TMCC12 and CClj--CCls were measured because the ion peaks from the kerosine in the mass spectrum interfered with measure
ments of the other solvents). Since the kerosine retarded the disappearance rate in the open system, it follows that the chlorinated compounds pass into the air above the water at a faster rate than they pass into the kerosine layer above the water.
A 2.2 0.1 mph wind (from a fan) across the surface of the water caused an increase in the evaporation rate as ex
pected. After 20 min the solute evaporation was --17% greater with the windthan in still air (0 0.2 mph wind).
At 1-2 C the solute evaporation rate was slower than at --25 C. After 30 min there was a 28% decrease in the amount of the chlorinated compounds which had evapo rated from water at 1-2C compared with the blank at --25C.
Thus the chlorinated compounds, CH2CI2, CHCI3, CH3CCI3, CHC]=-CCl2, and CCl2TMCCl2, evaporate rapidly from slowly stirred water in the presence of various natural and added contaminants. None of the contaminants exam ined changed the disappearance rate more than a factor of two. Thus evaporation is probably the major pathway by
which these solvents are lost from water. The rates of evaporation of the 22 chlorinated com
pounds mentioned in the introduction are listed in Table 1. The concentration of all of these compounds decreased ten fold within about 3 hr. In general, the higher the molecular weight the slower the material evaporated although numer
ous exceptions were noted.
Table III. Decomposition Rates of Chlorinated Compounds in Aerated Water in the Dark and in Presence of Sunlight
Compound
0 mo
Dark
Light
Concentration, ppm
6 mo1
Dartc
Light
12 mob Dark?
Light*1'
Deck Ruction
k, mo"1
rj4, mo
CH.Cl, CHClj CH,CCIS CHCI--CCIS CCI3--=CCI,
1.00 1.00 1.00 1.00 1.00
1.00 1.00 1.00 1.00 1.00
0.76* 0.73 0.46 0.68 0.63
0.79 0.75 0.46 >Jb56` 0.52
0.68, 0.70 0.63, 0.65 0.26, 0.29 0.44, 0.48 0.35, 0.41
0.64, 0.64 0.56, 0.57 0.32, 0.25 0.21, 0.30 0.24, 0.25
0.039 a 0.008 0.045 t 0.008 0.12 t 0.01 0.065 0.001 0.079 t 0.002
-IS -15
6 10.7
8.8
" June 22. 1971, to December 22, 1971. b June 22, 1971, to June 22, 1972, C Duollcete tunes run. d Caltulstea on tbe assumption ol e lirst order reaction. eTne second Oecimel place in each analysis is somewhat uncertain.
With respect to the recent findings of some of these com pounds in drinking wates (27), we note that the concentra tions found were generally well below those used in this study. It is difficult to predict loss rates from water at these very low concentrations from our data. Also the amount of agitation and free air space above the water may be less in some portions of a drinking water system than in our ex perimental system.
Reactivity Studies. These results are shown in Table III. The half-lives for the saturated compounds were nearly the same in either sunlight or the dark. The half-lives of the olefinic materials were 1.5 to 2 times shorter in sunlight than in the dark. The products of these reactions were not determined but are probably the same as those noted in the introduction. Dichloroacetic acid and hydrogen chloride are likely products from CHCl*"CClj (28).
The concentration of oxygen in air-saturated water is 8.S ppm at 25 (29). The concentrations of oxygen and the five chlorinated compounds in water were as follows: O2, 260 iiM`, CH2C12i 11.8 jiAf; CHCI3, 8.4 nM\ CH3CCI3, 7.5 uM\ CHCHCCI2, 7.6 uM\ CCl2"*CCl2l 6.0 ttM. Thus there was about b sixfold molar excess of dissolved oxygen compared to the total amount of chlorinated compounds. In addition, the air space above the solution in the quartz tubes con tained ~90 times as much oxygen as was present in the sat urated solution. Thus, there was a great excess of oxygen present which would have been available for complete oxi dation of all the chlorinated compounds present. Since these compounds are highly volatile from water, it is possi ble that part of the reaction occurred in the vapor phase.
Sunlight had the greatest effect on the reactivities of the unsaturated compounds, CHC1="CC12 and CCl2""CCl2. These findings are in agreement with predictions based on vapor phase photolysis studies where it was Bhown that these two compounds disappeared when irradiated with long wavelength light in the presence of nitric oxide or ni trogen dioxide (30-35). Thus^most of the disappearance of CHC1TMCC12 and CCl2"CClj was probably_due to oxida tion and was probably free radical in character. In contrast, sunlight had relatively little effect on the reactivities of CH2C12, CHCI3, and CH3CCI3. CH2CI2 and CH3CCI3 in the vapor phase in air are known to be very unreactive with long wavelength light in the presence of nitric oxide or ni trogen dioxide (35). Thus the major reactions of CH2CI2, CHCI3, and CH3CCI3 probably were ionic hydrolyses.
Prom kinetic studies carried out at higher temperatures, it is known that the hydrolysis of CH3CCI3 (16) is faster than that of CH2CI2 (13). This is also true at --25C. The extrapolated 6.9 months half-life for hydrolysis of CH3CCI3 at 25 C is in good agreement with our value of six months (Table III). Our experimental half-life for hydrolysis of CH2CI2 of ~18 months is in poor agreement with the ex trapolated value of --680 years at 25 C. However it was re
ported that the apparent activation energy for hydrolysis of
CH2CI2 was not constant, but was a function of tempera
ture (13). Thus the reaction at 25C may proceed by a dif
ferent mechanism from that at 100-150C, and the rate
constant extrapolated to 25C from data at 100-150C may
be meaningless.
Acknowledgment
The authors wish to thank Dr. M. J. Mintz for helpful discussions.
Literature Cited
(1) Murray, A. J,, Riley, J. P., Nature, 242,37-8 (1973). (2) Murray, A. J., Riley, J. P., Anal. Chim. Acta, 65, 261-70
(1973). (3) Farber, H. A., "Chlorinated Solvents and the .Environment,''
paper presented at AAPCC Symposium, Atlanta, Ga., January 10-11, 1973; "Textile Solvent Technology--Update "73," pp
6--12.
(4) Hester, N. E., Stephens, E. R., Taylor, O. C., J. Air Pollut. Control Assoc., 24,591-5 (1974).
(5) Lillian, DcSingh, H, B., Anal. Chem., 46,1060-3 (1974). (6) Simmonds, P. G,, Kerrin, S. L., Lovelock, J. E., Shair, F. H.,
Atmos. Environ., 8,209-16 (1974). (7) Kleopfer, R. D., Fairless, B. J., Environ. Sci. Technol., 6,
1036-7 (1972), (8) Lovelock, J. E., Maggs, R. J., Wade, R. J,, Nature, 241,194-6
(1973). (9) Tardiff, R. G., Deinzer, M., "Toxicity of Organic Compounds
in Drinking Water," paper presented at Fifteenth Water Quality Conference, Urbana-Champaign, IlL, February 7-8,1973. (10) Mackay, D., Wolkoff, A. W., Environ. Sci. Technol., 7,611-4 (1973). (11) Roka, K., Get. Patent 467,234 (1922); Chem. Abstr., 23, 2191 (1929). (12) Carlisle, P. J., Levine, A. A., Ind. Eng. Chem., 24, 146-7 (1932). (13) Fells, I., Moelwyn-Hugbes, E. A., J. Chem. Soc., 1326-33 (1958). (14) Fells, L, Fuel Soc. J. Urdu. Sheffield, 10,26-35 (1959); Chem. Abstr., 54,12748-9 (1960). (15) Hardie, D. W. F., "Kirk-Othmer Encyclopedia of Chemical Technology," 2nd ed., Vol. 5, pp 111-19, Interscience Publish ers, New York, N.Y. 1964. (16) Stowe, S. C-, Raley, C. F., Dow Chemical Co., Midland, Mich-,v private communication, 1960. (17) Britton, E. C., Reed, W. R., U.S. Patent 1,870,601 (1932); Chem. Abstr., 26, 5578 (1932). (18) Ryan, R. F., Dow Chemical Co., Midland, Mich., private com munication, 1954. (19) Howard, W. L., Burger, J. D., Dow Chemical Co., Freeport, Tex., private communication, 1965. ^20) Howard, W. L., Moore, T. L-, ibid., 1966. (21) Howard, W. L., ibid., 1967. s-(22) Carlisle, P. J., Levine, A. A., Ind. Eng. Chem., 24, 1164-8 (1932). -4(23) Shepherd, C. B., "Chlorine, Its Manufacture, Properties, and Uses," J. S. Sconce, Ed., pp 375-428, Reinhold Publishing Corp., New York, N.Y,, 1962. (24) Archer, W. L., Dow Chemical Co., Midland, Mich., private communication, 1970. (25) Ref. 15, pp 195-203.
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(26) Westover, L. B., Tou, J. C., Mark, J. H., Anal. Chem., 46, 568-71 (1974).
(27) Chem. Eng. Newt, p 18, April 28,1975. (28) Dilling, W. L., Tefertiller, N. B., submitted for publication. (29) Lange, N. A., "Handbook of Chemistry," 10th ed., p 1091,
McGraw-Hill, New York, N.Y., 1961. (30) Hamming, W. J., "Photochemical Reactivity of Solvents,"
paper presented at Aeronautic and Space Engineering and Man ufacturing Meeting, Society of Automotive Engineers, Los An geles,'Calif., October 2-6,1967. (31) Wilson, K, W,, Doyle, G. J., Hansen, D. A., Englert, R. D., "Photochemical Reactivity of Trichloroethylene and Other Sol
vents," paper presented at 158th American Chemical Society National Meeting, New York, N.Y., September 7-12, 1969; Ab stracts of Papers, ORPL 38.
(32) Wilson, K. W., Doyle, G. J., Hansen, D. A., Englert, R. D., Amer. Chem. Soc., Div. Org. Coat, and Platt. Chem. Preprints, 29, No. 2, 445-9 (1969).
(33) Wilson, K. W., "Photoreactivity of Trichloroethylene," Sum mary Report for Manufacturing Chemists Association on SRI Project PSC-6687, Stanford Research Institute, South Pasade na, Calif., September 1969.
(34) Altshuller, A. P., Bufalini, J. J,, Environ. Sci. Technol., 5, 39-64 (1971).
(35) Dilling, W. L., Bredeweg, C. J., Tefertiller, N. B., submitted for publication.
Received for review January IS, 1975. Accepted May 21,1975.
Molecular Composition of Secondary Aerosol and its Possible Origin
Dennis SchiMtzIa,* Dagmar Cronn, and Aldan L Crittenden Chemistry Department, University of Washington, Seattle, Wash. 98195 Robert J, Charison Civil Engineering Department, University of Washington, Seattle, Wash. 98195
Several aerosol samples were collected during a diurnal period of inversion and aerosol production in Pasadena, Calif. Particles were collected in two size ranges: particles of diameters less than 1-2 juin and particles of diameters greater thaw 1-2 am. Computer-controlled mass spectrometric thermal analysis was used for molecular organic and inorganic analysis. The results described in this paper are semiquantitative with a precision of 30% on a relative comparison basis, but accuracies may range up to two times for some of the organic secondary aerosols with estimated response factors. X-ray fluorescence and atomic absorption were used to obtain inorganic elemental composition. The diurnal variation in aerosol composition was studied for the two size ranges and used to postulate the primary and/or secondary origin of the aerosoL The most probable precur sors for the measured secondary aerosol products are pre sented in this paper and postulated from the results of smog chamber studies and the gaseous composition of gaso line, auto exhaust, and ambient air samples. The primary pollutants included alkanes, polycyclic aromatics, substi tuted phenols, and several elements. Organic secondary pollutants included acids, aldehydes, alcohols, chlorides, and nitrates. Inorganic secondary pollutants identified in cluded sulfates, nitrates, and chlorides. The results are dis cussed with respect to meteorological conditions.
It has been suggested by several investigators that pho tochemical aerosol produced from reactions of hydrocar bons and oxides of nitrogen are major pollutants in South ern California (I). Insight into processes occurring to form aerosols have been made using smog chambers. The com position of aerosols formed during the photochemical oxi dation of several alkanes in a smog chamber was first deter mined by Wilson et al. (2). O'Brien et al. (3, 4) have also found organic acids and nitrates in aerosols, formed from the smog chamber reactions of octadiene and N0Z. To
1 Scientific Research Laboratories, Ford Motor Co., P.0. Box
2053, Dearborn, Mich. 48121.
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SL 035319
date, few measurements on the molecular organic composi tion of atmospheric aerosols have been made during peri ods of atmospheric stability and photochemical aerosol for mation. Recently, new techniques have been established by Schuetzle (5-7) using computerized high-resolution mass spectrometry, which make such a study more feasible. Semiquantitative results on submicrogram quantities of pollutants were possible using this technique, which al lowed pollutant concentrations to be followed using 2- or 3-hr sampling intervals.
The sampling of air particulate matter was made in con junction with the 1972 California Aerosol Characterization Study (ACHEX) (8). Aerosol samples were collected over a two-month period from September 19, 1972, to November 25, 1972. Due to unusual meteorological conditions, there were few days during which the atmosphere was stable enough to allow the formation of photochemical aerosols. Fortunately, there was one three-day period of sampling, during which meteorological conditions were ideal for studying the molecular composition of aerosols before, dur ing, and after photochemical smog production.
Experimental
Atmospheric Sampling. Air sampling techniques for particulate and gaseous pollutants were used which were compatible with a sampling probe designed for the mass spectrometer system. A single-stage impactor was designed which collects particles greater than 1-2 jim on 0.30-in. diam gold plates. Gold was used as a sampling medium be cause of its nonreactivity to acid aerosols. The remainder of the particulate matter was collected on a glass fiber filter. A mobile sampling van was equipped with a 20-ft mast upon which the sampling assembly could be hoisted and di rected into the prevailing winds (Figure 1). After sampling, the filter and impactor plates were stored at dry ice tem perature in glass containers sealed with a Teflon gasket to prevent losses due to volatilization and interreaction of pollutants. (Total particle concentrations were determined using a 37-mm Nuclepore filter.) Impactor plates and Nuclepore filters were weighed to 2 Mg before and after sam pling. Submicron particle concentrations were determined from the difference between total particle concentrations and the supermicron particle concentrations. An integrat-