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首页> 外文期刊>The Annals of occupational hygiene. >Photothermal desorption of single-walled carbon nanotubes and coconut shell-activated carbons using a continuous light source for application in air sampling
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Photothermal desorption of single-walled carbon nanotubes and coconut shell-activated carbons using a continuous light source for application in air sampling

机译:使用连续光源的单壁碳纳米管和椰子壳活性碳的光热解吸,用于空气采样

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Many techniques exist to measure airborne volatile organic compounds (VOCs), each with differing advantages; sorbent sampling is compact, versatile, has good sample stability, and is the preferred technique for collecting VOCs for hygienists. Development of a desorption technique that allows multiple analyses per sample (similar to chemical desorption) with enhanced sensitivity (similar to thermal desorption) would be helpful to field hygienists. In this study, activated carbon (AC) and single-walled carbon nanotubes (SWNT) were preloaded with toluene vapor and partially desorbed with light using a common 12-V DC, 50-W incandescent/halogen lamp. A series of experimental chamber configurations were explored starting with a 500-ml chamber under static conditions, then with low ventilation and high ventilation, finally a 75-ml high ventilation chamber was evaluated. When preloaded with toluene and irradiated at the highest lamp setting for 4min, AC desorbed 13.9, 18.5, 23.8, and 45.9% of the loaded VOC mass, in each chamber configuration, respectively; SWNT desorbed 25.2, 24.3, 37.4, and 70.5% of the loaded VOC mass, respectively. SWNT desorption was significantly greater than AC in all test conditions (P= 0.02-<0.0001) demonstrating a substantial difference in sorbent performance. When loaded with 0.435mg toluene and desorbed at the highest lamp setting for 4min in the final chamber design, the mean desorption for AC was 45.8% (39.7, 52.0) and SWNT was 72.6% (68.8, 76.4) (mean represented in terms of 95% confidence interval). All desorption measurements were obtained using a field grade photoionization detector; this demonstrates the potential of using this technique to perform infield prescreening of VOC samples for immediate exposure feedback and in the analytical lab to introduce sample to a gas chromatograph for detailed analysis of the sample.
机译:存在许多测量空气中挥发性有机化合物(VOC)的技术,每种技术都有不同的优势。吸附剂采样紧凑,通用,具有良好的样品稳定性,是为卫生人员收集VOC的首选技术。开发一种脱附技术,可以对每个样品进行多次分析(类似于化学脱附),并具有更高的灵敏度(类似于热脱附),这将对现场卫生学家有所帮助。在这项研究中,活性炭(AC)和单壁碳纳米管(SWNT)预装了甲苯蒸气,并使用普通的12V DC,50W白炽灯/卤素灯部分解吸了光。探索了一系列实验室配置,从静态条件下的500 ml室开始,然后进行低通风和高通风,最后评估了75 ml高通风室。当预装甲苯并在最高灯设置下照射4min时,在每个腔室配置中,AC分别解吸了所装载VOC质量的13.9%,18.5%,23.8%和45.9%。 SWNT分别解吸了所装载VOC质量的25.2、24.3、37.4和70.5%。在所有测试条件下(P = 0.02- <0.0001),SWNT的脱附率均显着大于AC,表明吸附剂性能存在显着差异。在最终腔室设计中,当负载0.435mg甲苯并在最高灯设置下解吸4分钟时,AC的平均解吸率为45.8%(39.7,52.0),SWNT的平均解吸率为72.6%(68.8,76.4)(均值表示为95%置信区间)。所有的解吸测量均使用场级光电离检测器获得;这证明了使用该技术对VOC样品进行现场预筛选以进行即时暴露反馈的潜力,并证明了在分析实验室中将样品引入气相色谱仪进行样品详细分析的潜力。

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