G. W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia, USA.
J Am Soc Mass Spectrom. 2010 Nov;21(11):1900-5. doi: 10.1016/j.jasms.2010.07.007. Epub 2010 Jul 29.
The physical processes governing the transition from purely mechanical ejection to electromechanical ejection to electrospraying are investigated through complementary scaling analysis and optical visualization. Experimental characterization and visualization are performed with the ultrasonically-driven array of micromachined ultrasonic electrospray (AMUSE) ion source to decouple the electrical and mechanical fields. A new dimensionless parameter, the Fenn number, is introduced to define a transition between the spray regimes, in terms of its dependence on the characteristic Strouhal number for the ejection process. A fundamental relationship between the Fenn and Strouhal numbers is theoretically derived and confirmed experimentally in spraying liquid electrolytes of different ionic strength subjected to a varying magnitude electric field. This relationship and the basic understanding of the charged droplet generation physics have direct implications on the optimal ionization efficiency and mass spectrometric response for different types of analytes.
通过互补的标度分析和光学可视化研究了从纯机械喷射到机电喷射再到电喷雾的物理过程。实验特性描述和可视化是通过超声驱动的微机电超声喷雾(AMUSE)离子源进行的,以解耦电和机械场。引入了一个新的无量纲参数,即 Fenn 数,以根据喷射过程的特征斯特劳哈尔数来定义喷雾状态之间的转变。理论上推导出了 Fenn 数和斯特劳哈尔数之间的基本关系,并通过实验在不同离子强度的喷射液体电解质中得到了验证,这些电解质受到不同大小的电场的影响。这种关系以及对带电液滴生成物理的基本理解,对于不同类型的分析物的最佳离子化效率和质谱响应具有直接影响。