首页> 外文期刊>Journal of the American Society for Mass Spectrometry >Central ring electrode for trapping and excitation/detection in Fourier transform ion cyclotron resonance mass spectrometry
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Central ring electrode for trapping and excitation/detection in Fourier transform ion cyclotron resonance mass spectrometry

机译:傅里叶变换离子回旋共振质谱中捕获和激发/检测的中心环电极

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摘要

The use of a central trapping ring electrode for Fourier transform ion cyclotron resonance (FTICR) mass spectrometry is demonstrated. Ions are trapped with an oppositely biased static potential superimposed on both the excite and detect electrodes and maintained throughout the experiment, including the application of a dipolar rf excite waveform and the image current ion detection event. The use of a central trapping electrode for FTICR coupled with an open cell design retains the advantages of high ion throughput and gas conductance, while simplifying the electrode geometry and reducing the overall dimensions of the cell. This allows the central trapping electrode to be of utility in volume-limited vacuum chambers including FTICR instrument miniaturization. Presented here are the preliminary experimental results using the central trapping electrode as an FTICR cell in which the excitation and detection electrodes also create a trapping depression to constrain the z-axis motion of the ions. The cell overcomes the principle limitation of an earlier single trapping electrode design by producing a 91% effective potential well depth compared to 19% for the single trapping electrode and 33% for standard open cells. This allows the central trapping electrode configuration to achieve an order of magnitude improvement in ion capacity compared to more conventional open cell designs. (C) 2001 American Society for Mass Spectrometry. [References: 35]
机译:演示了使用中央捕集环电极进行傅立叶变换离子回旋共振(FTICR)质谱的方法。离子被叠加在激发电极和检测电极上的相反偏压的静态电势捕获,并在整个实验过程中保持不变,包括施加双极射频激发波形和图像电流离子检测事件。 FTICR中央捕集电极的使用与开放式电池设计相结合,保留了高离子通量和气体电导率的优势,同时简化了电极的几何形状并减小了电池的整体尺寸。这使得中央捕获电极可用于包括FTICR仪器小型化在内的体积受限的真空室中。这里展示的是使用中央捕获电极作为FTICR电池的初步实验结果,其中激发电极和检测电极也产生了捕获凹陷,以约束离子的z轴运动。该电池通过产生91%的有效势阱深度来克服早期的单个捕获电极设计的原理限制,相比之下,单个捕获电极的有效势阱深度为19%,标准开放单元的有效势阱深度为33%。与更常规的开放式电池设计相比,这允许中央捕获电极配置实现离子容量的数量级改善。 (C)2001年美国质谱学会。 [参考:35]

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