首页> 外文期刊>Journal of environmental monitoring: JEM >Stabilities of 58 volatile organic compounds in fused-silica-lined and SUMMA polished canisters under various humidified conditions
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Stabilities of 58 volatile organic compounds in fused-silica-lined and SUMMA polished canisters under various humidified conditions

机译:各种加湿条件下的熔融石英衬里和SUMMA抛光罐中58种挥发性有机化合物的稳定性

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Fused-silica-lined (FSL) canisters and SUMMA polished (SUMMA) canisters were compared for the recoveries and the stabilities of 58 volatile organic compounds (VOCs) at low ppbv (volume/volume) levels under various hmidified conditions using a three-stage preconcentration method followed by GC-MS analysis. The target VOCs included non-polar VOCs (e.g. halogenated hydrocarbons and aromatic hydrocarbons) and polar VOCs (e.g.alcohols, ketones, esters, ether, nitriles and thiols). The three-stage preconcentration method was initially optimized for simultaneous analysis of non-polar and polar VOCs because determination of canister stability is dependent on the accuracy of analytical measurements. The method showed good linearity over the cocnentration range from 1 to 25 ppbv for all target analytes, and the correlation coefficients were higher than 0.9974. The method detection limits ranged from 0.023 to 0.39 ppbv. The test mixtures loaded in both type of canisters (n = 3) had concentrations of 1.7-2.5 ppbv per compound at ambient pressure under various humidified conditions (%RH = 1.6,8.0,27,39,53 and > 99% with excess water present). All canister samples were initially analyzed on day 0(after 6-12 h). The effect of competitive adsorption of water vapor and polar VOCs on active sites of interior surface was remarkably observed for SUMMA canisters. Polar VOCs had a greater requirement for water vapor to be present. The RH percentages that ensured good recovery on day 0 were RH > 8% for non-polar VOCs and RH > 27% for polar VOCs (except alcohols under the condition of RH > 99%). All thiols were not recovered from SUMMA canisters under all conditions. FSL canisters showed good recoveries of more than 86% for all VOCs under all conditions on day 0 (except alcohols under the condition of RH > 99%). The recoveries of alcohols in obth canisters under the condition of RH > 99% displayed relatively low recoveries in the range 25-76% because of the partitioning effect into condensed water. The canister samples under the conditions of RH 8.0, 27, 53 and > 99% were analyzed for the stability test on days 3,7,14 and 28 after loading. All non-polar VOCs were reasonably stable in the FSL canisters under all examined conditions over 28 days. However, several polar VOCs that have realtively lower vapor pressure, e.g. MIBK, butyl acetate and alcohols except ethanol, showed unstable characteristics under relatively dry conditions (RH 8 and 27%) during 28 days. RH > 53% was needed to ensure good stabilities of all analytes except thiols with the recoveries of > 80% over 28 days for both canisters. Although the FSL canister showed good recoveries of more than 86% for thiols on day 0, drastic degradations were observed after day 3 and they were not detected after day 14.
机译:使用三阶段比较了熔融石英衬里(FSL)罐和SUMMA抛光(SUMMA)罐在低ppbv(体积/体积)水平下在低ppbv(体积/体积)水平下58种挥发性有机化合物(VOC)的回收率和稳定性。预浓缩方法,然后进行GC-MS分析。目标VOC包括非极性VOC(例如卤代烃和芳烃)和极性VOC(例如醇,酮,酯,醚,腈和硫醇)。最初对三阶段预浓缩方法进行了优化,以便同时分析非极性和极性VOC,因为罐稳定性的确定取决于分析测量的准确性。对于所有目标分析物,该方法在1至25 ppbv的浓度范围内均表现出良好的线性,相关系数均高于0.9974。该方法的检测极限范围为0.023至0.39 ppbv。在各种加湿条件下(常压下%RH = 1.6、8.0、27、39、53和> 99%,并有过量的水),装入两种罐(n = 3)中的测试混合物的浓度为每种化合物1.7-2.5 ppbv当下)。最初在第0天(6-12小时后)分析所有罐样品。对于SUMMA罐,明显观察到水蒸气和极性VOC在内表面活性部位上的竞争性吸附作用。极性VOC对存在水蒸气的要求更高。确保在第0天恢复良好的相对湿度百分比是:非极性VOC的RH> 8%,极性VOC的RH> 27%(相对湿度> 99%的酒精除外)。并非在所有条件下都从SUMMA罐中回收了所有硫醇。在第0天的所有条件下,FSL罐对所有VOC的回收率均达到86%以上(相对湿度> 99%的酒精除外)。由于在冷凝水中的分配作用,在相对湿度> 99%的条件下,在肥胖罐中回收的酒精含量较低,在25-76%的范围内。在装载后的第3、7、14和28天,对RH 8.0、27、53和> 99%的罐样品进行了稳定性测试。在28天的所有检查条件下,FSL罐中的所有非极性VOC都相当稳定。但是,一些极性VOC的蒸气压确实较低,例如MIBK,乙酸丁酯和除乙醇外的醇类在相对干燥的条件下(相对湿度8和27%)在28天内显示出不稳定的特性。需要确保RH> 53%,以确保所有分析物(硫醇除外)都具有良好的稳定性,两个罐在28天的回收率均> 80%。尽管FSL罐在第0天对硫醇的回收率超过86%,但在第3天后观察到急剧降解,而在第14天后未发现。

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