Probing anharmonicity of a quantum oscillator in an optomechanical cavity
File(s)PhysRevA.93.052306.pdf (313.11 KB) 1602.03516v2.pdf (757 KB)
Published version
Accepted version
Author(s)
Latmiral, L
Armata, F
Genoni, MG
Pikovski, I
Kim, MS
Type
Journal Article
Abstract
We present a way of measuring with high precision the anharmonicity of a quantum oscillator coupled to an optical field via radiation pressure. Our protocol uses a sequence of pulsed interactions to perform a loop in the phase space of the mechanical oscillator, which is prepared in a thermal state. We show how the optical field acquires a phase depending on the anharmonicity. Remarkably, one only needs small initial cooling of the mechanical motion to probe even small anharmonicities. Finally, by applying tools from quantum estimation theory, we calculate the ultimate bound on the estimation precision posed by quantum mechanics and compare it with the precision obtainable with feasible measurements such as homodyne and heterodyne detection on the cavity field. In particular we demonstrate that homodyne detection is nearly optimal in the limit of a large number of photons of the field and we discuss the estimation precision of small anharmonicities in terms of its signal-to-noise ratio.
Date Issued
2016-05-03
Date Acceptance
2016-04-13
Citation
Physical Review A, 2016, 93 (5)
ISSN
1094-1622
Publisher
American Physical Society
Journal / Book Title
Physical Review A
Volume
93
Issue
5
Copyright Statement
© 2016 American Physical Society
Sponsor
Engineering & Physical Science Research Council (E
Commission of the European Communities
Engineering & Physical Science Research Council (E
Grant Number
CJATH
317232
EP/K034480/1
Subjects
Science & Technology
Physical Sciences
Optics
Physics, Atomic, Molecular & Chemical
Physics
RADIATION-PRESSURE
PHASE ESTIMATION
MOVING MIRROR
MICROMIRROR
MECHANICS
STATES
quant-ph
General Physics
02 Physical Sciences
01 Mathematical Sciences
03 Chemical Sciences
Publication Status
Published
Article Number
052306