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The application of novel mass spectrometric techniques for the analysis of volatile organic compounds in different environments

机译:新型质谱技术在不同环境中分析挥发性有机化合物的应用

摘要

Volatile organic compounds (VOCs) are released into the atmosphere from numerous anthropogenic and biogenic sources. Traditionally VOCs have been measured using offline techniques such as Gas Chromatography-Mass Spectrometry (GC-MS). The development of the proton transfer reaction mass spectrometer (PTR-MS) has enabled the online analysis of VOC’s from both biogenic and anthropogenic sources. This instrument, however, provides little structural information making it impossible to distinguish between isomeric compounds. Here a range of New-PsychoactiveSubstances (NPS) are analysed using the recently developed Selective Reagent IonTime of Flight-Mass Spectrometer (SRI-ToF-MS) demonstrating its ability to distinguish between isomeric compounds. This instrument is then applied to the analysis of biogenic VOCs (bVOCs). Plants emit a wide variety of VOCs into that atmosphere. These compounds play an important role in plant communication and defence, with predatory insects making use of VOC emissions from plants following biotic stress to identify and locate their prey. This process is termed tritrophic signalling. Ozone will readily react with any bVOCs containing an alkene functional group, and as many alkenes (primarily monoterpenes and sesquiterpenes) have been shown to play a significant role in tritrophic signalling it was hypothesised that ozone may disrupt this signalling. This thesis investigates the effect of ozone on tritrophic signalling using a Brassica napus – Myzus persicae – Adalia bipunctata larvae (rapeseed – green peach aphid – two-spotted ladybird larvae) model system. Plant volatile emission was monitored using a PTR-MS and SRI-ToF-MS which enabled the better detection and identification of bVOCs than is possible using a traditional PTR-MS. Following ozone fumigation of B. napus it was shown that a large number of oxygenated compounds are emitted by the plant and that the emission of monoterpenes and sesquiterpenes from a plant chamber is reduced. However, ozone fumigation of the plant leaves was shown to have no impact on the emission of bVOCs below ground. Using a Y-tube olfactometer it was shown that ozone at environmentally-realistic mixing ratios (ca. 100 ppbv) disrupts the ability of M. persicae to locate a host plant. Ozone was also shown to disrupt tritrophic signalling by inhibiting the location of prey by A. bipunctata larvae. This disruption in tritrophic signalling was shown to be caused by degradation of bVOCs via ozonolysis and not changes to bVOC emission from the plant. Finally fluxes of VOCs above a temperate forest canopy were recorded using PTRMS and a Proton Transfer Reaction-Time of Flight-Mass Spectrometer (PTR-ToFMS) enabling a direct comparison to be made between these instruments during field scale measurements.
机译:挥发性有机化合物(VOC)从许多人为和生物来源释放到大气中。传统上,VOC是使用离线技术(例如气相色谱-质谱法(GC-MS))测量的。质子转移反应质谱仪(PTR-MS)的发展使在线分析生物源和人为源的VOC成为可能。但是,该仪器几乎没有提供结构信息,因此无法区分异构化合物。在这里,使用新近开发的选择性试剂离子飞行时间质谱仪(SRI-ToF-MS)分析了一系列新型精神活性物质(NPS),证明了其区分异构化合物的能力。然后将该仪器用于生物VOC(bVOC)的分析。植物向该大气中排放各种各样的VOC。这些化合物在植物的通讯和防御中起着重要作用,掠食性昆虫利用生物胁迫后植物中的VOC排放来识别和定位猎物。该过程称为三养信号。臭氧很容易与任何含有烯烃官能团的bVOC发生反应,并且由于许多烯烃(主要是单萜和倍半萜烯)在三养信号中发挥了重要作用,据推测臭氧可能会破坏这种信号。本论文使用甘蓝型油菜–桃蚜–阿达利(Adalia bipunctata)幼虫(油菜–桃蚜–二斑瓢虫幼虫)模型系统研究了臭氧对三养信号的影响。使用PTR-MS和SRI-ToF-MS监测植物挥发物的排放,与传统PTR-MS相比,可以更好地检测和鉴定bVOC。研究表明,在对甘蓝型油菜进行臭氧熏蒸之后,植物会释放出大量的含氧化合物,并且减少了植物室中单萜和倍半萜的排放。但是,显示出对植物叶片进行臭氧熏蒸处理不会对地下bVOC的排放产生影响。使用Y型管嗅觉仪显示,在环境逼真混合比(约100 ppbv)下的臭氧破坏了桃蚜的定位寄主植物的能力。臭氧还显示出通过抑制双歧曲霉幼虫的猎物的位置来破坏三营养信号。已证明三营养信号的这种破坏是由于臭氧分解过程中bVOC的降解引起的,而不是植物中bVOC排放的变化。最后,使用PTRMS和质子传递反应飞行时间质谱仪(PTR-ToFMS)记录了温带森林冠层上方VOC的通量,从而可以在田间规模测量期间在这些仪器之间进行直接比较。

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