首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Enhanced sensitivity and metabolite coverage with remote laser ablation electrospray ionization-mass spectrometry aided by coaxial plume and gas dynamics
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Enhanced sensitivity and metabolite coverage with remote laser ablation electrospray ionization-mass spectrometry aided by coaxial plume and gas dynamics

机译:通过同轴羽流和气体动力学,增强了具有远程激光消融电喷雾电离质谱的敏感性和代谢物覆盖率

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摘要

Laser ablation electrospray ionization-mass spectrometry (LAESI-MS) allows for direct analysis of biological tissues at atmospheric pressure with minimal to no sample preparation. In LAESI, a mid-IR laser beam (lambda = 2.94 mu m) is focused onto the sample to produce an ablation plume that is intercepted and ionized by an electrospray at the inlet of the mass spectrometer. In the remote LAESI platform, the ablation process is removed from the mass spectrometer inlet and takes place in an ablation chamber, allowing for incorporation of additional optics for microscopic imaging and targeting of specific features of the sample for laser ablation sampling. The ablated material is transported by a carrier gas through a length of tubing, delivering it to the MS inlet where it is intercepted and ionized by an electrospray. Previous proof-of-principle studies used a prolate spheroid ablation chamber with the carrier gas flow perpendicular to the ablation plume. This design resulted in significant losses of MS signal in comparison to conventional LAESI. Here we present a newly designed conical inner volume ablation chamber that radially confines the ablation plume produced in transmission geometry. The carrier gas flow and the expanding ablation plume are aligned in a coaxial configuration to improve the transfer of ablated particles. This new design not only recovered the losses observed with the prolate spheroid chamber design, but was found to provide an similar to 12-15% increase in the number of metabolite peaks detected from plant leaves and tissue sections relative to conventional LAESI.
机译:激光烧蚀电喷雾电离质谱(LaESI-MS)允许在大气压下直接分析生物组织,以最小的样品制备。在LaESI中,中外激光束(Lambda =2.94μm)聚焦到样品上以产生烧蚀羽流,通过电泵在质谱仪的入口处截取和电离。在远程LAESI平台中,从质谱仪入口中除去消融过程,并在消融室中进行,允许掺入用于显微镜成像的额外光学,并针对激光消融采样的样品的特定特征。烧蚀材料通过载气通过管道的长度传送,将其输送到MS入口,其中通过电喷雾截取和电离。以前的原则上的研究用来使用具有垂直于消融羽流的载气流的环形球形消融室。与传统的LaESI相比,该设计导致MS信号的显着损耗。在这里,我们提出了一种新设计的锥形内部容积消融室,其径向限制在传动几何形状中产生的消融羽流。载气流和膨胀消融羽流在同轴构型中对齐以改善消融颗粒的转移。这种新设计不仅恢复了随机球体室设计观察到的损失,而且发现从植物叶片和组织切片相对于常规LaESi检测到的代谢物峰的数量增加12-15%。

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