The Experts below are selected from a list of 198 Experts worldwide ranked by ideXlab platform

Alexander Studenikin - One of the best experts on this subject based on the ideXlab platform.

Yu. M. Zinoviev - One of the best experts on this subject based on the ideXlab platform.

  • on Electromagnetic Interactions for massive mixed symmetry field
    Journal of High Energy Physics, 2011
    Co-Authors: Yu. M. Zinoviev
    Abstract:

    In this paper we investigate Electromagnetic Interactions for simplest massive mixed symmetry field. Using frame-like gauge invariant formulation we extend Fradkin-Vasiliev procedure, initially proposed for investigation of gravitational Interactions for massless particles in AdS space, to the case of Electromagnetic Interactions for massive particles leaving in (A)dS space with arbitrary value of cosmological constant including flat Minkowski space. At first, as an illustration of general procedure, we re-derive our previous results on massive spin 2 Electromagnetic Interactions and then we apply this procedure to massive mixed symmetry field. These two cases are just the simplest representatives of two general class of fields, namely completely symmetric and mixed symmetry ones, and it is clear that the results obtained admit straightforward generalization to higher spins as well.

  • on massive spin 2 Electromagnetic Interactions
    Nuclear Physics, 2009
    Co-Authors: Yu. M. Zinoviev
    Abstract:

    Abstract In this paper we investigate Electromagnetic Interactions for massive spin 2 particles in ( A ) dS space at linear approximation using gauge invariant description for such massive particles. We follow bottom-up approach, i.e. we begin with the introduction of minimal interaction and then proceed by adding non-minimal Interactions with higher and higher number of derivatives together with corresponding non-minimal corrections to gauge transformations until we are able to restore gauge invariance broken by transition to gauge covariant derivatives. We managed to construct a model that smoothly interpolates between massless particle in ( A ) dS space and massive one in a flat Minkowski space. Also we reproduce the same results in a frame-like formalism which can be more suitable for generalizations on higher spins.

  • ON SPIN-2 Electromagnetic Interactions
    Modern Physics Letters A, 2009
    Co-Authors: Yu. M. Zinoviev
    Abstract:

    In this paper we (re)consider the problem of Electromagnetic Interactions for massless spin-2 particles and show that in (A)dS spaces with nonzero cosmological constant it is indeed possible (at least in linear approximation) to switch on minimal Electromagnetic Interactions supplemented by third derivative non-minimal ones which are necessary to restore gauge invariance.

Federico Capasso - One of the best experts on this subject based on the ideXlab platform.

  • classical and fluctuation induced Electromagnetic Interactions in micron scale systems designer bonding antibonding and casimir forces
    Annalen der Physik, 2015
    Co-Authors: Alejandro W Rodriguez, David Woolf, Steven G Johnson, Marko Loncar, Federico Capasso
    Abstract:

    Whether intentionally introduced to exert control over particles and macroscopic objects, such as for trapping or cooling, or whether arising from the quantum and thermal fluctuations of charges in otherwise neutral bodies, leading to unwanted stiction between nearby mechanical parts, Electromagnetic Interactions play a fundamental role in many naturally occurring processes and technologies. In this review, we survey recent progress in the understanding and experimental observation of optomechanical and quantum-fluctuation forces. Although both of these effects arise from exchange of Electromagnetic momentum, their dramatically different origins, involving either real or virtual photons, lead to different physical manifestations and design principles. Specifically, we describe recent predictions and measurements of attractive and repulsive optomechanical forces, based on the bonding and antibonding Interactions of evanescent waves, as well as predictions of modified and even repulsive Casimir forces between nanostructured bodies. Finally, we discuss the potential impact and interplay of these forces in emerging experimental regimes of micromechanical devices.

  • classical and fluctuation induced Electromagnetic Interactions in micronscale systems designer bonding antibonding and casimir forces
    arXiv: Optics, 2014
    Co-Authors: Alejandro W Rodriguez, David Woolf, Steven G Johnson, Marko Loncar, Federico Capasso
    Abstract:

    Whether intentionally introduced to exert control over particles and macroscopic objects, such as for trapping or cooling, or whether arising from the quantum and thermal fluctuations of charges in otherwise neutral bodies, leading to unwanted stiction between nearby mechanical parts, Electromagnetic Interactions play a fundamental role in many naturally occurring processes and technologies. In this review, we survey recent progress in the understanding and experimental observation of optomechanical and quantum-fluctuation forces. Although both of these effects arise from exchange of Electromagnetic momentum, their dramatically different origins, involving either real or virtual photons, lead to different physical manifestations and design principles. Specifically, we describe recent predictions and measurements of attractive and repulsive optomechanical forces, based on the bonding and antibonding Interactions of evanescent waves, as well as predictions of modified and even repulsive Casimir forces between nanostructured bodies. Finally, we discuss the potential impact and interplay of these forces in emerging experimental regimes of micromechanical devices.

C Giunti - One of the best experts on this subject based on the ideXlab platform.

Alejandro W Rodriguez - One of the best experts on this subject based on the ideXlab platform.

  • classical and fluctuation induced Electromagnetic Interactions in micron scale systems designer bonding antibonding and casimir forces
    Annalen der Physik, 2015
    Co-Authors: Alejandro W Rodriguez, David Woolf, Steven G Johnson, Marko Loncar, Federico Capasso
    Abstract:

    Whether intentionally introduced to exert control over particles and macroscopic objects, such as for trapping or cooling, or whether arising from the quantum and thermal fluctuations of charges in otherwise neutral bodies, leading to unwanted stiction between nearby mechanical parts, Electromagnetic Interactions play a fundamental role in many naturally occurring processes and technologies. In this review, we survey recent progress in the understanding and experimental observation of optomechanical and quantum-fluctuation forces. Although both of these effects arise from exchange of Electromagnetic momentum, their dramatically different origins, involving either real or virtual photons, lead to different physical manifestations and design principles. Specifically, we describe recent predictions and measurements of attractive and repulsive optomechanical forces, based on the bonding and antibonding Interactions of evanescent waves, as well as predictions of modified and even repulsive Casimir forces between nanostructured bodies. Finally, we discuss the potential impact and interplay of these forces in emerging experimental regimes of micromechanical devices.

  • classical and fluctuation induced Electromagnetic Interactions in micronscale systems designer bonding antibonding and casimir forces
    arXiv: Optics, 2014
    Co-Authors: Alejandro W Rodriguez, David Woolf, Steven G Johnson, Marko Loncar, Federico Capasso
    Abstract:

    Whether intentionally introduced to exert control over particles and macroscopic objects, such as for trapping or cooling, or whether arising from the quantum and thermal fluctuations of charges in otherwise neutral bodies, leading to unwanted stiction between nearby mechanical parts, Electromagnetic Interactions play a fundamental role in many naturally occurring processes and technologies. In this review, we survey recent progress in the understanding and experimental observation of optomechanical and quantum-fluctuation forces. Although both of these effects arise from exchange of Electromagnetic momentum, their dramatically different origins, involving either real or virtual photons, lead to different physical manifestations and design principles. Specifically, we describe recent predictions and measurements of attractive and repulsive optomechanical forces, based on the bonding and antibonding Interactions of evanescent waves, as well as predictions of modified and even repulsive Casimir forces between nanostructured bodies. Finally, we discuss the potential impact and interplay of these forces in emerging experimental regimes of micromechanical devices.