Tunable phonon cavity coupling in graphene membranes
arXiv:1604.04605 · doi:10.1038/nnano.2016.86
Abstract
A major achievement of the past decade has been the realization of macroscopic quantum systems by exploiting interactions between optical cavities and mechanical resonators. In these systems, phonons are coherently annihilated or created in exchange for photons. Similar phenomena have recently been observed through "phonon cavity" coupling -- energy exchange between modes of a single system as mediated by intrinsic material nonlinearity. To date, this has been demonstrated primarily for bulk crystalline, high-quality-factor (Q>100,000) mechanical systems operated at cryogenic temperatures. Here we propose graphene as an ideal candidate for the study of such nonlinear mechanics. The large elastic modulus of this material and capability for spatial symmetry breaking via electrostatic forces is expected to generate a wealth of nonlinear phenomena, including tunable inter-modal coupling. We have fabricated circular graphene membranes and report strong phonon cavity effects at room temperature, despite the modest Q (~100) of this system. We observe both amplification into parametric instability ("mechanical lasing") and cooling of Brownian motion in the fundamental mode through excitation of cavity sidebands. Furthermore, we characterize quenching of these parametric effects at large vibrational amplitudes, offering a window on the all-mechanical analogue of cavity optomechanics, where observation of such effects has proven elusive.
References in corpus (11)
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- A Mechanical Mass Sensor with Yoctogram Resolution
- Optomechanical coupling between a multilayer graphene mechanical resonator and a superconducting microwave cavity
- Probing thermal expansion of graphene and modal dispersion at low-temperature using graphene NEMS resonators
- Nonlinear modal interactions in clamped-clamped mechanical resonators
- Coupling graphene mechanical resonators to superconducting microwave cavities
- Stamp transferred suspended graphene mechanical resonators for radio-frequency electrical readout
- Graphene optomechanics realized at microwave frequencies
- SU-8 clamped CVD graphene drum resonators
- Thermomechanical two-mode squeezing in an ultrahigh membrane resonator
Cited by in corpus (49)
- Experimental realization of on-chip topological nanoelectromechanical metamaterials
- Nanomechanical Resonators: Toward Atomic Scale
- Mesoscopic physics of nanomechanical systems
- Young's modulus of 2D materials extracted from their nonlinear dynamic response
- Dynamics of 2D Material Membranes
- Collective Excitations in 2D Materials
- Strong indirect coupling between graphene-based mechanical resonators via a phonon cavity
- Ultrasensitive Displacement Noise Measurement of Carbon Nanotube Mechanical Resonators
- Optomechanical measurement of thermal transport in two-dimensional MoSe2 lattices
- Coherent phonon dynamics in spatially separated graphene mechanical resonators
- Giant Tunable Mechanical Nonlinearity in Graphene-Silicon Nitride Hybrid Resonator
- Real-time measurement of nanotube resonator fluctuations in an electron microscope
- Motion transduction with thermo-mechanically squeezed graphene resonator modes
- Photon-Pressure Strong-Coupling between two Superconducting Circuits
- Dynamically-enhanced strain in atomically thin resonators
- Electrostatically induced phononic crystal
- Quantum Simulations with a Trilinear Hamiltonian
- Sliding nanomechanical resonators
- Quantum nondemolition measurement of mechanical motion quanta
- Shape tailoring to enhance and tune the properties of graphene nanomechanical resonators
- Spatially Resolved Optical Excitation of Mechanical Modes in Graphene NEMS
- Monitoring Electrostatically-Induced Deflection, Strain and Doping in Suspended Graphene using Raman Spectroscopy
- Facile and Ultraclean Graphene-on-Glass Nanopores by Controlled Electrochemical Etching
- Graphene nanodrums as valleytronic devices
- Non-volatile rewritable frequency tuning of a nanoelectromechanical resonator using photoinduced doping
- Virtual exceptional points in an electromechanical system
- MicroMegascope
- Stabilizing quantum coherence against pure dephasing in the presence of quantum feedback at finite temperature
- Tuning of temperature dependence of resonance frequency shift of atomically thin mechanical resonators with van der Waals heterojunction
- Backaction-evading measurement of entanglement in optomechanics
- Fabry-Perot Interferometric Calibration of 2D Nanomechanical Plate Resonators
- Dry transfer method for suspended graphene on lift-off-resist: simple ballistic devices with Fabry-Pérot interference
- Tension mediated nonlinear coupling between orthogonal mechanical modes of nanowire resonators
- Electrically-tunable graphene nanomechanical resonators
- Strong Phonon-Cavity Coupling and Parametric Interaction in a Single Microcantilever under Ambient Conditions
- Photonic Spin Hall Effect using bilayer Graphene in Nano Optomechanical Cavities
- Effect of internal resonance on the dynamics of MoS2 resonator
- Heat-to-Mechanical Energy Conversion in Graphene: Manifestation of Umklapp Enhancement with Strain
- Towards tunable graphene phononic crystals
- Electron-electron attraction in an engineered electromechanical system
- Parallel measurements of vibrational modes in a few-layer graphene nanomechanical resonator using software-defined radio dongles
- Controlling solar radiation forces with graphene in plasmonic metasurface
- Sideband ground-state cooling of graphene with Rydberg atoms via vacuum forces
- Dynamic in situ Control of Heat Rectification in Graphene Nano Ribbons using Electric Field-induced Strain
- Switching off energy decay channels in nanomechanical resonators
- Group theoretical and ab-initio description of color center candidates in fluorographene
- Photothermal responsivity of van der Waals material-based nanomechanical resonators
- Stepwise relaxation and stochastic precession in degenerate oscillators dispersively coupled to particles
- Tunable parametric amplification of a graphene nanomechanical resonator in the nonlinear regime