论文标题

飞秒激光器和离子辐照用钻石制造的量子微纳米设备

Quantum micro-nano devices fabricated in diamond by femtosecond laser and ion irradiation

论文作者

Eaton, Shane M., Hadden, J. P., Bharadwaj, Vibhav, Forneris, Jacopo, Picollo, Federico, Bosia, Federico, Sotillo, Belen, Giakoumaki, Argyro N., Jedrkiewicz, Ottavia, Chiappini, Andrea, Ferrari, Maurizio, Osellame, Roberto, Barclay, Paul E., Olivero, Paolo, Ramponi, Roberta

论文摘要

由于其光学活跃的氮空位中心(NV),Diamond引起了量子技术平台的极大兴趣。即使在环境温度下,NV的基态旋转也可以在光学上显示出约1 ms的长旋连贯性时间。另外,NV的能级对外场敏感。这些属性使NVS作为基于电子旋转和量子信息系统的有效纳米级分辨率传感的可扩展平台具有吸引力。 Diamond Photonics增强了与NVS的光学相互作用,对量子传感和信息都有益。由于其出色的生物相容性,钻石也对微流体应用也很有说服力,并具有NVS提供的感应功能。但是,在钻石中制造光子,NVS和微流体学仍然是一个重大挑战。在本报告中,提供了离子辐射和飞秒激光写作的概述,这是两种有前途的基于钻石的量子技术设备的有前途的制造方法。描述了两种技术的独特功能,据报道,钻石中彩色中心,光学波导和微流体的制造结果,重点是集成设备,旨在用于高性能量子传感器和明天的量子信息系统

Diamond has attracted great interest as a quantum technology platform thanks to its optically active nitrogen vacancy center (NV). The NV's ground state spin can be read out optically exhibiting long spin coherence times of about 1 ms even at ambient temperatures. In addition, the energy levels of the NV are sensitive to external fields. These properties make NVs attractive as a scalable platform for efficient nanoscale resolution sensing based on electron spins and for quantum information systems. Diamond photonics enhances optical interaction with NVs, beneficial for both quantum sensing and information. Diamond is also compelling for microfluidic applications due to its outstanding biocompatibility, with sensing functionality provided by NVs. However, it remains a significant challenge to fabricate photonics, NVs and microfluidics in diamond. In this Report, an overview is provided of ion irradiation and femtosecond laser writing, two promising fabrication methods for diamond based quantum technological devices. The unique capabilities of both techniques are described, and the most important fabrication results of color center, optical waveguide and microfluidics in diamond are reported, with an emphasis on integrated devices aiming towards high performance quantum sensors and quantum information systems of tomorrow

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