Low-power photothermal self-oscillation of bimetallic nanowires
arXiv:1610.07591 · doi:10.1021/acs.nanolett.6b04769
Abstract
We investigate the nonlinear mechanics of a bimetallic, optically absorbing SiN-Nb nanowire in the presence of incident laser light and a reflecting Si mirror. Situated in a standing wave of optical intensity and subject to photothermal forces, the nanowire undergoes self-induced oscillations at low incident light thresholds of due to engineered strong temperature-position (-) coupling. Along with inducing self-oscillation, laser light causes large changes to the mechanical resonant frequency and equilibrium position that cannot be neglected. We present experimental results and a theoretical model for the motion under laser illumination. In the model, we solve the governing nonlinear differential equations by perturbative means to show that self-oscillation amplitude is set by the competing effects of direct - coupling and parametric excitation due to - coupling. We then study the linearized equations of motion to show that the optimal thermal time constant for photothermal feedback is rather than the widely reported . Lastly, we demonstrate photothermal quality factor () enhancement of driven motion as a means to counteract air damping. Understanding photothermal effects on micromechanical devices, as well as nonlinear aspects of optics-based motion detection, can enable new device applications as oscillators or other electronic elements with smaller device footprints and less stringent ambient vacuum requirements.
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