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首页> 外文期刊>Food Analytical Methods >Optimization of Headspace Solid-Phase Microextraction and Static Headspace Sampling of Low-Boiling Volatiles Emitted from Wild Rocket (Diplotaxis tenuifolia L.)
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Optimization of Headspace Solid-Phase Microextraction and Static Headspace Sampling of Low-Boiling Volatiles Emitted from Wild Rocket (Diplotaxis tenuifolia L.)

机译:野火箭(Diplotaxis tenuifolia L.)产生的低沸点挥发物的顶空固相微萃取和静态顶空采样的优化

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摘要

Emission of low-boiling volatile organic compounds (VOCs) is one of the first signs of a cascade of degradation processes taking place in leafy green vegetables after harvest. VOCs from fresh produce can be difficult to measure due to their high volatility, low stability, and variable concentrations. VOCs emitted from packaged wild rocket were selected for optimization of two sampling techniques: solid-phase microextraction (SPME) and static headspace (SHS) sampling. The selected compounds were acetaldehyde, dimethyl sulfide, nitromethane, 3-methylfuran, ethyl acetate, dimethyl disulfide, and hexanal. These compounds having different chemical structures, molecular weights, and boiling points were representative for the VOC profile of packaged wild rocket. The carboxen/polydimethylsiloxane (CAR/PDMS) fiber showed the highest extraction efficiency. For SHS analysis, injection of 750 μL of gas sample at 10 μL s−1 injection speed and 1:1 split ratio was optimal. High losses of dimethyl sulfide, dimethyl disulfide, and nitromethane (21–62 %) were observed during 20 h postsampling storage of the CAR/PDMS fiber prior to desorption. SHS sampling of VOCs and storage of vials for 2.75 h prior to GC-MS analysis also led to losses of volatiles. For analysis of VOCs naturally emitted from packaged wild rocket, the SPME and SHS sampling methods were complementary as they covered a broad concentration range from the lower parts per trillion (SPME) to the higher parts per million (SHS) ranges.
机译:低沸点挥发性有机化合物(VOC)的排放是收获后多叶绿色蔬菜中发生的一系列降解过程的最初迹象之一。新鲜农产品中的挥发性有机化合物由于挥发性高,稳定性差和浓度可变,可能难以测量。选择了从包装好的野外火箭发射的VOC来优化两种采样技术:固相微萃取(SPME)和静态顶空(SHS)采样。选择的化合物是乙醛,二甲基硫醚,硝基甲烷,3-甲基呋喃,乙酸乙酯,二甲基二硫醚和己醛。这些具有不同化学结构,分子量和沸点的化合物代表了包装好的野外火箭的VOC曲线。羧酸/聚二甲基硅氧烷(CAR / PDMS)纤维显示出最高的提取效率。对于SHS分析,最佳的是以10μs-1的进样速度和1:1的分流比进样750μL气体样品。在解吸前对CAR / PDMS纤维进行20小时的后采样存储期间,观察到二甲基硫醚,二甲基二硫醚和硝基甲烷的大量损失(21–62%)。在进行GC-MS分析之前,SHS对VOC进行了SHS采样并将样品瓶存放了2.75小时,这也导致了挥发物的损失。为了分析从包装好的野外火箭中自然释放出的挥发性有机化合物,SPME和SHS采样方法是互补的,因为它们涵盖了从低万亿分之几(SPME)到高百万分之几(SHS)的广泛浓度范围。

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