Ultrasound sensing at thermomechanical limits with optomechanical buckled-dome microcavities

光学 材料科学 光力学 光电子学 谐振器 超声波传感器 灵敏度(控制系统) 声学 物理 电子工程 工程类
作者
G. J. Hornig,K. G. Scheuer,Eric B. Dew,Roger J. Zemp,R. G. DeCorby
出处
期刊:Optics Express [The Optical Society]
卷期号:30 (18): 33083-33083 被引量:22
标识
DOI:10.1364/oe.463588
摘要

We describe the use of monolithic, buckled-dome cavities as ultrasound sensors. Patterned delamination within a compressively stressed thin film stack produces high-finesse plano-concave optical resonators with sealed and empty cavity regions. The buckled mirror also functions as a flexible membrane, highly responsive to changes in external pressure. Owing to their efficient opto-acousto-mechanical coupling, thermal-displacement-noise limited sensitivity is achieved at low optical interrogation powers and for modest optical ( Q ∼ 10 3 ) and mechanical ( Q ∼ 10 2 ) quality factors. We predict and verify broadband (up to ∼ 5 MHz), air-coupled ultrasound detection with noise-equivalent pressure (NEP) as low as ∼ 30-100 µPa/Hz 1/2 . This corresponds to an ultrasonic force sensitivity ∼ 2 × 10 −13 N/Hz 1/2 and enables the detection of MHz-range signals propagated over distances as large as ∼ 20 cm in air. In water, thermal-noise-limited sensitivity is demonstrated over a wide frequency range (up to ∼ 30 MHz), with NEP as low as ∼ 100-800 µPa/Hz 1/2 . These cavities exhibit a nearly omnidirectional response, while being ∼ 3-4 orders of magnitude more sensitive than piezoelectric devices of similar size. Easily realized as large arrays and naturally suited to direct coupling by free-space beams or optical fibers, they offer significant practical advantages over competing optical devices, and thus could be of interest for several emerging applications in medical and industrial ultrasound imaging.

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