Local Optical Probe of Motion and Stress in a multilayer graphene NEMS
arXiv:1203.3973 · doi:10.1038/nnano.2011.250
Abstract
Nanoelectromechanical systems (NEMSs) are emerging nanoscale elements at the crossroads between mechanics, optics and electronics, with significant potential for actuation and sensing applications. The reduction of dimensions compared to their micronic counterparts brings new effects including sensitivity to very low mass, resonant frequencies in the radiofrequency range, mechanical non-linearities and observation of quantum mechanical effects. An important issue of NEMS is the understanding of fundamental physical properties conditioning dissipation mechanisms, known to limit mechanical quality factors and to induce aging due to material degradation. There is a need for detection methods tailored for these systems which allow probing motion and stress at the nanometer scale. Here, we show a non-invasive local optical probe for the quantitative measurement of motion and stress within a multilayer graphene NEMS provided by a combination of Fizeau interferences, Raman spectroscopy and electrostatically actuated mirror. Interferometry provides a calibrated measurement of the motion, resulting from an actuation ranging from a quasi-static load up to the mechanical resonance while Raman spectroscopy allows a purely spectral detection of mechanical resonance at the nanoscale. Such spectroscopic detection reveals the coupling between a strained nano-resonator and the energy of an inelastically scattered photon, and thus offers a new approach for optomechanics.
References in corpus (12)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Electrochemically Top Gated Graphene: Monitoring Dopants by Raman Scattering
- Uniaxial Strain in Graphene by Raman Spectroscopy: G peak splitting, Gruneisen Parameters and Sample Orientation
- Electric Field Effect Tuning of Electron-Phonon Coupling in Graphene
- Macroscopic graphene membranes and their extraordinary stiffness
- Probing the Intrinsic Properties of Exfoliated Graphene: Raman Spectroscopy of Free-Standing Monolayers
- Compression Behavior of Single-layer Graphene
- Probing thermal expansion of graphene and modal dispersion at low-temperature using graphene NEMS resonators
- High-sensitivity optical monitoring of a micro-mechanical resonator with a quantum-limited optomechanical sensor
- From Graphene to Carbon Fibres: Mechanical Deformation and Development of a Universal Stress Sensor
Cited by in corpus (11)
- Nanomechanical Resonators: Toward Atomic Scale
- Mechanics of freely-suspended ultrathin layered materials
- Mesoscopic physics of nanomechanical systems
- A Review on Flexural Mode of Graphene: Lattice Dynamics, Thermal Conduction, Thermal Expansion, Elasticity, and Nanomechanical Resonance
- All-Optical Blister Test of Suspended Graphene Using Micro-Raman Spectroscopy
- Ultrawide Frequency Tuning of Atomic Layer van der Waals Heterostructure Electromechanical Resonators
- Colorimetry technique for scalable characterization of suspended graphene
- Monitoring Electrostatically-Induced Deflection, Strain and Doping in Suspended Graphene using Raman Spectroscopy
- Fermi resonance in the Raman spectrum of graphene
- Electrically-tunable graphene nanomechanical resonators
- Parallel measurements of vibrational modes in a few-layer graphene nanomechanical resonator using software-defined radio dongles