Strong anharmonicity in a carbon nanotube electromechanical oscillator populated with a few tens of quanta
ORAL
Abstract
It has been a long-sought goal to prepare nonlinear quantum states in a mechanical oscillator. However, intrinsic anharmonicity due to geometric nonlinearity in conventional micro and nano-electromechanical oscillators is extremely small at the level of zero-point motion. Here we demonstrate the ultra-strong coupling of the vibrations of a carbon nanotube resonator to single electron tunnelling. The results in the suppression of the mechanical resonance frequency by up to 30%, which is one order higher than previous reported results. Our device is in the so-called ultrastrong coupling regime, where the electromechanical coupling per phonon is one order of magnitude larger than the resonance frequency. This coupling results in a strong anharmonicity in the mechanical oscillator. More than 20% of the thermal energy is stored in the quartic potential when the number of quanta is about 80. The strong electromechanical coupling in nanotube resonators opens up the possibility to realize a mechanical qubit.
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Presenters
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Chandan Samanta
ICFO-The Institute of Photonic Sciences
Authors
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Chandan Samanta
ICFO-The Institute of Photonic Sciences
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Sergio De Bonis
ICFO-The Institute of Photonic Sciences
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Roger Tormo
ICFO-The Institute of Photonic Sciences
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Christoffer Moller
ICFO-The Institute of Photonic Sciences
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Wei Yang
ICFO-The Institute of Photonic Sciences
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Carles Urgell
ICFO-The Institute of Photonic Sciences
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Biljana Stamenic
ECE Department, UCSB
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Brian Thibeault
ECE Department, UCSB
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Demis D. John
ECE Department, UCSB
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Ning Cao
ECE Department, UCSB
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David Czaplewski
Argonne National Laboratory
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Fabio Pistolesi
CNRS, LOMA, Universite Bordeaux
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Adrian Bachtold
ICFO-The Institute of Photonic Sciences