Melo Bruno, T Cuairan Marc, Tomassi Grégoire F M, Meyer Nadine, Quidant Romain
Nanophotonic Systems Laboratory, Department of Mechanical and Process Engineering, ETH Zurich, Zurich, Switzerland.
Quantum Center, ETH Zurich, Zurich, Switzerland.
Nat Nanotechnol. 2024 Sep;19(9):1270-1276. doi: 10.1038/s41565-024-01677-3. Epub 2024 Jun 6.
By isolating from the environment and precisely controlling mesoscopic objects, levitation in vacuum has evolved into a versatile technique that has already benefited diverse scientific directions, from force sensing and thermodynamics to materials science and chemistry. It also holds great promise for advancing the study of quantum mechanics in the unexplored macroscopic regime. However, most current levitation platforms are complex and bulky. Recent efforts in miniaturization of vacuum levitation set-ups have comprised electrostatic and optical traps, but robustness is still a concern for integration into confined settings, such as cryostats or portable devices. Here we show levitation and motion control in high vacuum of a silica nanoparticle at the surface of a hybrid optical-electrostatic chip. By combining fibre-based optical trapping and sensitive position detection with cold damping through planar electrodes, we cool the particle motion to a few hundred phonons. We envisage that our fully integrated platform is the starting point for on-chip devices combining integrated photonics and nanophotonics with precisely engineered electric potentials, enhancing control over the particle motion towards complex state preparation and read-out.
通过将介观物体与环境隔离并进行精确控制,真空中的悬浮已发展成为一项通用技术,该技术已在从力传感、热动力学到材料科学和化学等多个科学领域中发挥作用。它在推进未探索的宏观领域中的量子力学研究方面也具有巨大潜力。然而,当前大多数悬浮平台都复杂且庞大。近期在真空悬浮装置小型化方面的努力包括静电阱和光阱,但要集成到诸如低温恒温器或便携式设备等受限环境中,其鲁棒性仍是一个问题。在此,我们展示了在混合光电芯片表面的高真空中对二氧化硅纳米颗粒的悬浮和运动控制。通过将基于光纤的光阱和灵敏的位置检测与通过平面电极的冷阻尼相结合,我们将粒子运动冷却到几百个声子。我们设想,我们的全集成平台是将集成光子学和纳米光子学与精确设计的电势相结合的片上设备的起点,可增强对粒子运动的控制,以实现复杂状态的制备和读出。