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Characterization of metal-bearing diesel nanoparticles using single-particle mass spectrometry

机译:单粒子质谱法表征含金属的柴油纳米粒子

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Acute and chronic health effects have been associated with diesel particulate matter (DPM).Since both ultrafine particles and metals have been implicated in this correlation,we are conducting investigations to characterize the metal content of diesel nanoparticles.For this study,DPM was generated by a 1.51 engine and ferrocene was added to the fuel to raise the level of metal in the system.The exhaust particles were analyzed in real time using a recently developed single-particle mass spectrometer (SPMS) that has the capability of ablating each particle down to its elemental constituents,thereby yielding the relative mass of elements in each particle.Particle-size calibration of the instrument was achieved by correlating the SPMS signal intensity with measured DPM size.Using this approach,we present size- and composition-resolved elemental species distributions for both the nuclei mode and ultrafine portion of the accumulation mode of DPM.Results show that when the fuel is doped with ferrocene,iron-rich nanoparticles are formed and their number and size increase with level of doping.Larger iron-bearing particles are also formed,but it is observed that the metal to carbon ratios increase for smaller particle sizes.Hydrogen to carbon ratios were measured as a function of particle size,which allowed us to determine the relative amounts of organic carbon and elemental carbon in the particles and showed that the hydrogen to carbon ratios increase for smaller sized particles.The combined results are used to discuss the effects of metal doping level and engine load on particle nucleation and mechanisms of DPM formation.
机译:柴油颗粒物(DPM)与急性和慢性健康影响有关。由于超细颗粒和金属都与这种关系有关,因此我们正在进行研究以表征柴油纳米颗粒的金属含量。一台1.51发动机和二茂铁添加到燃料中以提高系统中的金属含量。使用最新开发的单颗粒质谱仪(SPMS)实时分析排气颗粒,该质谱仪能够将每个颗粒烧蚀至通过将SPMS信号强度与测得的DPM大小相关联来实现仪器的颗粒尺寸校准。通过这种方法,我们给出了尺寸和成分分辨的元素种类分布对于DPM的原子核模式和累积模式的超细部分,结果表明,当燃料掺杂f形成了富含二茂铁的二茂铁纳米粒子,并且随着掺杂程度的增加其数量和尺寸也增加了。同时,还发现了较大的含铁粒子,但是观察到金属与碳的比例随粒径的增加而增加。作为粒径的函数,这使我们能够确定颗粒中有机碳和元素碳的相对含量,并表明较小尺寸的颗粒的氢碳比增加。合并后的结果用于讨论金属掺杂的影响颗粒成核的水平和发动机负荷以及DPM的形成机理。

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