Claudiu Genes
Max Planck Society
95 Papers
767 Citations
Claudiu Genes is an academic researcher from Max Planck Society. The author has contributed to research in topics: Optical cavity & Quantum entanglement. The author has an hindex of 29, co-authored 85 publications. Previous affiliations of Claudiu Genes include University of Michigan & University of Erlangen-Nuremberg.
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Papers
Ground-state cooling of a micromechanical oscillator: Comparing cold damping and cavity-assisted cooling schemes
TL;DR: In this paper, the authors provide a general framework to describe cooling of a micromechanical oscillator to its quantum ground state by means of radiation-pressure coupling with a driven optical cavity.
659
Conductivity in organic semiconductors hybridized with the vacuum field
Emanuele Orgiu,Jino George,James A. Hutchison,Eloïse Devaux,Jean-Francois Dayen,Bernard Doudin,Francesco Stellacci,Cyriaque Genet,Johannes Schachenmayer,Claudiu Genes,Guido Pupillo,Paolo Samorì,Thomas W. Ebbesen +12 more
TL;DR: The potential of engineering the vacuum electromagnetic environment to modify and to improve properties of materials is illustrated, by injecting carriers into states that are hybridized to the vacuumagnetic field.
541
Robust entanglement of a micromechanical resonator with output optical fields
TL;DR: In this paper, an analysis of the optomechanical entanglement between the experimentally detectable output field of an optical cavity and a vibrating cavity end-mirror is performed.
380
Conductivity in organic semiconductors hybridized with the vacuum field
Emanuele Orgiu,Jino George,James A. Hutchison,Eloïse Devaux,Jean-Francois Dayen,Bernard Doudin,Francesco Stellacci,Cyriaque Genet,Johannes Schachenmayer,Claudiu Genes,Guido Pupillo,Paolo Samorì,Thomas W. Ebbesen +12 more
TL;DR: The surface plasmon modes of periodic hole arrays in Ag and Al films enhance by one order of magnitude the conductivity and the carrier mobility of organic semiconducting films deposited on these structures as mentioned in this paper.
357
Cavity-enhanced transport of excitons.
TL;DR: It is shown that exciton-type transport in certain materials can be dramatically modified by their inclusion in an optical cavity: the modification of the electromagnetic vacuum mode structure introduced by the cavity leads to transport via delocalized polariton modes rather than through tunneling processes in the material itself.
320