Cruz D, Chang J P, Fico M, Guymon A J, Austin D E, Blain M G
University of California, Los Angeles, Los Angeles, California 90095, USA.
Rev Sci Instrum. 2007 Jan;78(1):015107. doi: 10.1063/1.2403840.
A description of the design and microfabrication of arrays of micrometer-scale cylindrical ion traps is offered. Electrical characterization and initial ion trapping experiments with a massively parallel array of 5 microm internal radius (r(0)) sized cylindrical ion traps (CITs) are also described. The ion trap, materials, and design are presented and shown to be critical in achieving minimal trapping potential while maintaining minimal power consumption. The ion traps, fabricated with metal electrodes, have inner radii of 1, 2, 5, and 10 microm and range from 5 to 24 microm in height. The electrical characteristics of packaged ion trap arrays were measured with a vector network analyzer. The testing focused on trapping toluene (C(7)H(8)), mass 91, 92, or 93 amu, in the 5 microm sized CITs. Ions were formed via electron impact ionization and were ejected by turning off the rf voltage applied to the ring electrode; a current signal was collected at this time. Optimum ionization and trapping conditions, such as a sufficient pseudopotential well and high ionization to ion loss rate ratio (as determined by simulation), proved to be difficult to establish due to the high device capacitance and the presence of exposed dielectric material in the trapping region. However, evidence was obtained suggesting the trapping of ions in 1%-15% of the traps in the array. These first tests on micrometer-scale CITs indicated the necessary materials and device design modifications for realizing ultrasmall and low power ion traps.
本文介绍了微米级圆柱形离子阱阵列的设计与微加工。还描述了对内径为5微米(r(0))的圆柱形离子阱(CIT)大规模平行阵列进行的电学特性表征和初始离子捕获实验。文中展示了离子阱、材料和设计对于在保持低功耗的同时实现最小捕获势至关重要。这些用金属电极制造的离子阱,内径分别为1、2、5和10微米,高度在5至24微米之间。用矢量网络分析仪测量了封装好的离子阱阵列的电学特性。测试重点是在5微米尺寸的CIT中捕获甲苯(C(7)H(8)),其质量数为91、92或93原子质量单位。离子通过电子碰撞电离形成,并通过关闭施加在环形电极上的射频电压来逐出;此时收集电流信号。由于器件电容高以及捕获区域存在暴露的介电材料,难以建立最佳的电离和捕获条件,如足够的赝势阱和高电离与离子损失率之比(由模拟确定)。然而,有证据表明阵列中1% - 15%的阱中捕获了离子。这些对微米级CIT的首次测试表明了实现超小型、低功耗离子阱所需的材料和器件设计改进。