Spatial mapping of multimode Brownian motions in high-frequency silicon carbide microdisk resonators.

نویسندگان

  • Zenghui Wang
  • Jaesung Lee
  • Philip X-L Feng
چکیده

High-order and multiple modes in high-frequency micro/nanomechanical resonators are attractive for empowering signal processing and sensing with multi-modalities, yet many challenges remain in identifying and manipulating these modes, and in developing constitutive materials and structures that efficiently support high-order modes. Here we demonstrate high-frequency multimode silicon carbide microdisk resonators and spatial mapping of the intrinsic Brownian thermomechanical vibrations, up to the ninth flexural mode, with displacement sensitivities of ~7-14 fm Hz(-1/2). The microdisks are made in a 500-nm-carbide on 500-nm-oxide thin-film technology that facilitates ultrasensitive motion detection via scanning laser interferometry with high spectral and spatial resolutions. Mapping of these thermomechanical vibrations vividly visualizes the shapes and textures of high-order Brownian motions in the microdisks. Measurements on devices with varying dimensions provide deterministic information for precisely identifying the mode sequence and characteristics, and for examining mode degeneracy, spatial asymmetry and other effects, which can be exploited for encoding information with increasing complexity.

برای دانلود رایگان متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

ثبت نام

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

منابع مشابه

6H-SiC microdisk torsional resonators in a “smart-cut” technology

We report on experimental demonstration of high frequency torsional resonators based on microdisk structures enabled by a “smart-cut” 6H-silicon carbide (6H-SiC) technology. Circular microdisks axially supported by pairs of thin tethers, with diameters of 5–15 lm, exhibit torsional-mode micromechanical resonances with frequency of 1–60 MHz, and quality (Q) factors up to 1280 at room temperature...

متن کامل

Visible Photoluminescence from Cubic (3C) Silicon Carbide Microdisks Coupled to High Quality Whispering Gallery Modes

We present the design, fabrication, and characterization of cubic (3C) silicon carbide microdisk resonators with high quality factor modes at visible and near-infrared wavelengths (600−950 nm). Whispering gallery modes with quality factors as high as 2300 and corresponding mode volumes V ∼ 2 × (λ/n) are measured using laser scanning confocal microscopy at room temperature. We obtain excellent c...

متن کامل

High-Q lithium niobate microdisk resonators on a chip for efficient electro-optic modulation.

Lithium niobate (LN) microdisk resonators on a LN-silica-LN chip were fabricated using only conventional semiconductor fabrication processes. The quality factor of the LN resonator with a 39.6-μm radius and a 0.5-μm thickness is up to 1.19 × 10(6), which doubles the record of the quality factor 4.84 × 10(5) of LN resonators produced by microfabrication methods allowing batch production. Electro...

متن کامل

Improving the quality factor of microwave compact resonators by optimizing their geometrical parameters

Related Articles Mapping inter-element coupling in metamaterials: Scaling down to infrared J. Appl. Phys. 111, 094904 (2012) Thermal nonlinearity in silicon microcylindrical resonators Appl. Phys. Lett. 100, 181101 (2012) High-Q silicon optomechanical microdisk resonators at gigahertz frequencies Appl. Phys. Lett. 100, 173116 (2012) Membrane metamaterial resonators with a sharp resonance: A com...

متن کامل

High quality planar silicon nitride microdisk resonators for integrated photonics in the visible wavelength range.

High quality factor (Q approximately 3.4 x 10(6)) microdisk resonators are demonstrated in a Si(3)N(4) on SiO(2) platform at 652-660 nm with integrated in-plane coupling waveguides. Critical coupling to several radial modes is demonstrated using a rib-like structure with a thin Si(3)N(4) layer at the air-substrate interface to improve the coupling.

متن کامل

ذخیره در منابع من


  با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید

عنوان ژورنال:
  • Nature communications

دوره 5  شماره 

صفحات  -

تاریخ انتشار 2014