利用纳米氧化技术原位调节光机械晶体

IF 8.4 1区 物理与天体物理 Q1 OPTICS Optica Pub Date : 2024-03-08 DOI:10.1364/optica.516479
Utku Hatipoglu, Sameer Sonar, David P. Lake, Srujan Meesala, and Oskar Painter
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引用次数: 0

摘要

光机械晶体是量子传导和传感领域前景广阔的设备平台。精确瞄准这些器件的光学和声学共振频率对于未来在这些方面取得进展至关重要。然而,这些波长级纳米器件的制造紊乱通常会导致共振频率不均匀。在这里,我们利用原子力显微镜,通过电场诱导纳米氧化,实现了硅光机械晶体中光学和声学共振频率的原位选择性调谐。我们的方法可以实现电信C波段光学共振波长的调谐范围为2nm; {\gt} {2}\;{\rm nm}(0.13%),以及5 GHz声共振频率的调谐范围为60MHz{/gt}{60}\;{/rm MHz}(1.2%)。光学波长的调谐分辨率为 1.1 pm,声学频率的调谐分辨率为 150 kHz,这使我们能够使用模式生成算法对多个光机电晶体谐振器进行光谱对准。我们的研究结果建立了一种对光机械晶体进行精确制造后调谐的方法。这项技术可以实现耦合光机械谐振器阵列、可扩展的谐振光机械电路以及微波-光量子传感器的频率匹配。
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In situ tuning of optomechanical crystals with nano-oxidation
Optomechanical crystals are a promising device platform for quantum transduction and sensing. Precise targeting of the optical and acoustic resonance frequencies of these devices is crucial for future advances on these fronts. However, fabrication disorder in these wavelength-scale nanoscale devices typically leads to inhomogeneous resonance frequencies. Here we achieve in situ, selective frequency tuning of optical and acoustic resonances in silicon optomechanical crystals via electric field-induced nano-oxidation using an atomic-force microscope. Our method can achieve a tuning range >2nm (0.13%) for the optical resonance wavelength in the telecom C-band, and >60MHz (1.2%) for the acoustic resonance frequency at 5 GHz. The tuning resolution of 1.1 pm for the optical wavelength and 150 kHz for the acoustic frequency allows us to spectrally align multiple optomechanical crystal resonators using a pattern generation algorithm. Our results establish a method for precise post-fabrication tuning of optomechanical crystals. This technique can enable coupled optomechanical resonator arrays, scalable resonant optomechanical circuits, and frequency matching of microwave-optical quantum transducers.
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来源期刊
Optica
Optica OPTICS-
CiteScore
19.70
自引率
2.90%
发文量
191
审稿时长
2 months
期刊介绍: Optica is an open access, online-only journal published monthly by Optica Publishing Group. It is dedicated to the rapid dissemination of high-impact peer-reviewed research in the field of optics and photonics. The journal provides a forum for theoretical or experimental, fundamental or applied research to be swiftly accessed by the international community. Optica is abstracted and indexed in Chemical Abstracts Service, Current Contents/Physical, Chemical & Earth Sciences, and Science Citation Index Expanded.
期刊最新文献
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