Elastic Purcell Effect

Упругий эффект Пёрселла
L. G. Helt, Christopher G. Poulton, M. J. Steel, Mikołaj K. Schmidt
2018-08-08

elastic Purcell effectelastic Purcell factorelastic local density of stateselastic nanoresonatorsgold nanoparticle antennas
In this work, we introduce an elastic analog of the Purcell effect and show theoretically that spherical nanoparticles can serve as tunable and robust antennas for modifying the emission from localized elastic sources. This effect can be qualitatively described by introducing elastic counterparts of the familiar electromagnetic parameters: local density of elastic states, elastic Purcell factor, and effective volume of elastic modes. To illustrate our framework, we consider the example of a submicron gold sphere as a generic elastic GHz antenna and find that shear and mixed modes of low orders in such systems offer considerable elastic Purcell factors. This formalism opens pathways towards extended control over dissipation of vibrations in various optomechanical systems and contributes to closing the gap between classical and quantum-mechanical treatments of phonons localized in elastic nanoresonators.
1
Elastic counterparts of local density of states, Purcell factor, and effective mode volume provide a framework for describing elastic emission enhancement.
2
Low-order shear and mixed modes in submicron gold spheres can produce considerable elastic Purcell factors at gigahertz frequencies.
3
Spherical nanoparticles are theoretically shown to function as tunable and robust antennas for controlling elastic emission.
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The formalism may enable control of vibrational dissipation in optomechanical systems and help connect classical and quantum descriptions of localized phonons.
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The study introduces an elastic analog of the Purcell effect for modifying emission from localized elastic sources.

spherical nanoparticles, specifically a submicron gold sphere, acting as elastic GHz antennas for localized elastic sources

modification of localized elastic-source emission through tunable elastic Purcell enhancement, including the elastic density of states, Purcell factor, and mode effective volume

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Publication Date
2018-08-08
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Authors
L. G. Helt
Christopher G. Poulton
M. J. Steel
Mikołaj K. Schmidt
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