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大气压下纳米电喷雾离子源中离子传输的数值模拟

Numerical Simulation of Ion Transport in a Nano-Electrospray Ion Source at Atmospheric Pressure.

作者信息

Wang Wei, Bajic Steve, John Benzi, Emerson David R

机构信息

Scientific Computing Department, Science and Technology Facilities Council, Daresbury Laboratory, Sci-Tech Daresbury, Warrington, Cheshire, WA4 4AD, UK.

Waters Corporation, Altrincham Rd, Wilmslow, Cheshire, SK9 4AX, UK.

出版信息

J Am Soc Mass Spectrom. 2018 Mar;29(3):600-612. doi: 10.1007/s13361-017-1863-0. Epub 2018 Jan 9.

Abstract

Understanding ion transport properties from the ion source to the mass spectrometer (MS) is essential for optimizing device performance. Numerical simulation helps in understanding of ion transport properties and, furthermore, facilitates instrument design. In contrast to previously reported numerical studies, ion transport simulations in a continuous injection mode whilst considering realistic space-charge effects have been carried out. The flow field was solved using Reynolds-averaged Navier-Stokes (RANS) equations, and a particle-in-cell (PIC) method was applied to solve a time-dependent electric field with local charge density. A series of ion transport simulations were carried out at different cone gas flow rates, ion source currents, and capillary voltages. A force evaluation analysis reveals that the electric force, the drag force, and the Brownian force are the three dominant forces acting on the ions. Both the experimental and simulation results indicate that cone gas flow rates of ≤250 slph (standard liter per hour) are important for high ion transmission efficiency, as higher cone gas flow rates reduce the ion signal significantly. The simulation results also show that the ion transmission efficiency reduces exponentially with an increased ion source current. Additionally, the ion loss due to space-charge effects has been found to be predominant at a higher ion source current, a lower capillary voltage, and a stronger cone gas counterflow. The interaction of the ion driving force, ion opposing force, and ion dispersion is discussed to illustrate ion transport mechanism in the ion source at atmospheric pressure. Graphical Abstract.

摘要

了解从离子源到质谱仪(MS)的离子传输特性对于优化设备性能至关重要。数值模拟有助于理解离子传输特性,此外,还便于仪器设计。与先前报道的数值研究不同,已在考虑实际空间电荷效应的情况下进行了连续注入模式下的离子传输模拟。使用雷诺平均纳维-斯托克斯(RANS)方程求解流场,并应用粒子在单元(PIC)方法求解具有局部电荷密度的随时间变化的电场。在不同的锥口气流速率、离子源电流和毛细管电压下进行了一系列离子传输模拟。力评估分析表明,电场力、阻力和布朗力是作用在离子上的三种主要力。实验和模拟结果均表明,对于高离子传输效率而言,锥口气流速率≤250 slph(标准升每小时)很重要,因为较高的锥口气流速率会显著降低离子信号。模拟结果还表明,离子传输效率随离子源电流的增加呈指数下降。此外,已发现由于空间电荷效应导致的离子损失在较高的离子源电流、较低的毛细管电压和较强的锥口气流逆流情况下占主导地位。讨论了离子驱动力、离子阻力和离子扩散之间的相互作用,以阐明大气压下离子源中的离子传输机制。图形摘要。

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