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Enabling the next generation of spaceborne quadrupole mass spectrometers

机译:启用下一代星载四极质谱仪

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摘要

The quadrupole mass spectrometer (QMS) has over 30 years of spaceflight heritage in making important neutral gas and low energy ion observations. Given their geometrical constraints, these instruments are currently operated at the extreme limit of their capabilities. However, a technique called higher order auxiliary excitation provides a set of novel, robust, electronics-based solutions for improving the performance of these sensors. By driving the quadrupole rods with an additional frequency nearly twice that of the normal RF operating frequency, substantially increased abundance sensitivity, maximum attainable mass resolution, and peak stability can be achieved through operation of voltage scan lines through the center of formed upper stability islands. Such improvements are modeled using numerical simulations of ion trajectories in a quadrupole field with and without applied higher order auxiliary excitation. When compared to a traditional QMS with a mass range up to 500Da, sensors can be designed with the same precision electronics to have expected mass ranges beyond 1500Da with a power increase of less than twice that of its heritage implementations.
机译:四极质谱仪(QMS)在进行重要的中性气体和低能离子观测方面拥有超过30年的航天历史。鉴于它们的几何约束,这些仪器目前在其功能的极限范围内运行。但是,一种称为高阶辅助激励的技术为改善这些传感器的性能提供了一套新颖,可靠,基于电子的解决方案。通过以接近正常RF工作频率两倍的附加频率驱动四极杆,可以通过经过形成的上部稳定性岛中心的电压扫描线操作,显着提高丰度灵敏度,可达到的最大质量分辨率和峰值稳定性。使用四极场中的离子轨迹的数值模拟(带有和不带有高阶辅助激励)对这些改进进行建模。与质量范围高达500Da的传统QMS相比,传感器可以采用相同的精密电子设备进行设计,以使其预期的质量范围超过1500Da,且功率增加不到传统实现的两倍。

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