Micro-fabricated components for atomic quantum sensors
Micro-fabricated components for atomic quantum sensors
批准号:
2889174
负责人:
金额:
$0.0万
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
原子能级的分离在计量学中提供了以前无法获得的精度和精度,具有频率和波长[1]的SI可追溯参考。这种可实现的性能被广泛应用于基于实验室的原子传感器,主要是波长参考,时钟,干涉仪和磁力计。由于原子传感器可以提供广泛的应用范围和性能提升,在量子仪器的小型化方面已经做出了重大努力,以促进可现场部署的量子技术的需求。近年来,我们的团队专注于核心部件的微制造,这些部件支撑了原子钟和磁力计测量平台的小型化[2,3]。我们的研究课题包括光学元件,通过光栅磁光阱(GMOT)[4]的发展,帮助冷原子传感器小型化到芯片规模。除此之外,我们还为微机械蒸汽电池技术的制造奠定了基础,该技术具有适合传感器构造的定制特性。该项目将扩展我们最近在微制造组件方面的研究,以开发芯片级矢量磁力计在相干种群捕获方面的工作演示。该系统将建立在我们最近的工作与蒸汽电池制造和环境控制这些电池的内部真空压力。此外,该项目将利用我们在微光学方面的专业知识开发新型衍射光学元件,以有利于矢量测量,同时大大减少紧凑仪器的封装占地面积。最后,学生所学到的核心技能将被转移到帮助开发我们的片上光学时钟和波长参考,学生将成为我们制造能力和项目发展的中心。陈建军,张建军,张建军,等。芯片级原子器件,应用物理学报,33(2):2018。J. P. McGilligan, et al.,激光冷却在芯片级平台上的应用,应用物理学报,11,54 (2020)J. a . Rushton,等,贡献综述:便携式超冷量子技术的全小型化磁光阱的可行性,科学仪器学报,85,121501(2014)4。A. Bregazzi等。一种用于芯片级激光冷却的简单成像解决方案。理论物理。地球科学学报,2002,21(4):481 - 481。S. Dyer等。微型机械蒸汽电池中的氮气缓冲气体压力调节,苹果公司。理论物理。莱特123,074001 (2023)
英文摘要
The separation of atomic energy levels provides a previously unobtainable accuracy and precision in metrology, with an SI traceable reference to frequency and wavelength [1]. This achievable performance is widely exploited in laboratory based atomic sensors, mainly wavelength references, clocks, interferometers, and magnetometers. As a result of the wide application range and performance gains that atomic sensors can provide, significant efforts have been made in the miniaturisation of quantum instruments to facilitate the needs of field-deployable quantum technologies. In recent years our group has focussed on the micro-fabrication of core components that underpin the miniaturisation of atomic platforms for measurements in clocks and magnetometers [2,3]. Our research topics have included optical components to aid the miniaturisation of cold-atom sensors to the chip-scale through the development of the grating magneto-optical trap (GMOT) [4]. Beyond this, we have developed a foundation for the fabrication of micro-machined vapour cell technology, with bespoke characteristics suited to the sensor in construction. This project will expand upon our recent research in micro-fabricated components to develop working demonstrations of a chip-scale vector magnetometer working of coherent population trapping. The system will build upon our recent work with vapour cell fabrication and environmental control of the inner vacuum pressures of these cells. Additionally, this project will utilise our expertise in micro-optics to develop novel diffractive optical elements to benefit the vector measurement while greatly reducing the package footprint for an unambiguously compact apparatus. Finally, the core skillset learned by the student will be transferable to aiding the development of our on-chip optical clock and wavelength references, with the student being at the centre of our fabrication capabilities and project growth going forward.1. J. Kitching, Chip-scale atomic devices, Applied Physics Reviews 5, 031302 (2018)2. J. P. McGilligan, et. al., Laser cooling in a chip-scale platform, Applied Physics Letters 117, 054001 (2020)3. J. A. Rushton, et. al., Contributed Review: The feasibility of a fully miniaturized magneto-optical trap for portable ultracold quantum technology, Review of Scientific Instruments 85, 121501 (2014)4. A. Bregazzi, et al. A simple imaging solution for chip-scale laser cooling, Appl. Phys. Lett 119, 184002 (2021)5. S. Dyer, et al. Nitrogen buffer gas pressure tuning in a micro-machined vapor cell, Appl. Phys. Lett 123, 074001 (2023)
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