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Ion trap electric field measurements using slab coupled optical sensors

机译:使用平板耦合光学传感器进行离子阱电场测量

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Ion traps are widely used in the field of mass spectrometry. These devices use high electric fields to mass-selectively trap, eject, and count the particles of a material, producing a mass spectrum of the given material. Because of their usefulness, technology pushes for smaller, more portable ion traps for field use. Making internal ion trap field measurements not yet feasible because current electric field sensors are often too bulky or their metallic composition perturbs field measurements. Using slab coupled optical sensor (SCOS) technology, we are able to build sensors that are compatible with the spacing constraints of the ion trap. These sensors are created by attaching a nonlinear crystal slab waveguide to an optical fiber. When a laser propagates through the fiber, certain wavelengths of light couple out of the fiber via the crystal and create "resonances" in the output light spectrum. These resonances shift in proportion to a given applied electric field, and by measuring that shift, we can approximate the electric field. Developing a sensor that can effectively characterize the electric fields within an ion trap will greatly assist in ion trap design, fabrication, and troubleshooting techniques.
机译:离子阱在质谱分析领域被广泛使用。这些设备使用高电场质量选择地捕获,喷射和计数材料的颗粒,从而产生给定材料的质谱图。由于其有用性,技术推动了更小,更便携的离子阱在现场使用。使内部离子阱场测量尚不可行,因为当前的电场传感器通常体积太大或它们的金属成分干扰了场测量。使用平板耦合光学传感器(SCOS)技术,我们能够构建与离子阱的间距限制兼容的传感器。这些传感器是通过将非线性晶体平板波导连接到光纤上而创建的。当激光传播通过光纤时,某些波长的光通过晶体耦合出光纤,并在输出光谱中产生“共振”。这些共振与给定的施加电场成比例地偏移,并且通过测量该偏移,我们可以近似电场。开发一种能够有效表征离子阱内电场的传感器,将大大有助于离子阱的设计,制造和故障排除技术。

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