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Additive manufacturing of magnetic shielding and ultra-high vacuum flange for cold atom sensors

机译:用于冷原子传感器的磁屏蔽和超高真空法兰的增材制造

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摘要

Recent advances in the understanding and control of quantum technologies, such as those based on cold atoms, have resulted in devices with extraordinary metrological performance. To realise this potential outside of a lab environment the size, weight and power consumption need to be reduced. Here we demonstrate the use of laser powder bed fusion, an additive manufacturing technique, as a production technique relevant to the manufacture of quantum sensors. As a demonstration we have constructed two key components using additive manufacturing, namely magnetic shielding and vacuum chambers. The initial prototypes for magnetic shields show shielding factors within a factor of 3 of conventional approaches. The vacuum demonstrator device shows that 3D-printed titanium structures are suitable for use as vacuum chambers, with the test system reaching base pressures of 5 ± 0.5 × 10−10 mbar. These demonstrations show considerable promise for the use of additive manufacturing for cold atom based quantum technologies, in future enabling improved integrated structures, allowing for the reduction in size, weight and assembly complexity.
机译:诸如基于冷原子的量子技术的理解和控制方面的最新进展已导致具有出色计量性能的设备。为了在实验室环境之外实现这种潜力,需要减小尺寸,重量和功耗。在这里,我们演示了激光粉末床融合(一种增材制造技术)作为与量子传感器制造相关的生产技术的使用。作为演示,我们使用增材制造构造了两个关键组件,即磁屏蔽室和真空室。磁屏蔽的初始原型显示的屏蔽系数是传统方法的三分之一。真空演示器设备显示3D打印的钛结构适合用作真空室,测试系统的基本压力达到5±0.5×10 -10 mbar。这些演示显示了将增材制造用于基于冷原子的量子技术的巨大前景,将来可实现改进的集成结构,从而减少尺寸,重量和组装复杂性。

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