Thermally controlled optical resonator for vacuum squeezed states separation

Author:

Nguyen C.1ORCID,Bréelle E.1,Barsuglia M.1,Capocasa E.1ORCID,De Laurentis M.23,Sequino V.23ORCID,Sorrentino F.4

Affiliation:

1. Université de Paris Cité, CNRS

2. INFN, Sezione di Napoli

3. Università di Napoli “Federico II”

4. INFN, Sezione di Genova

Abstract

Future gravitational-wave detectors will use frequency-dependent squeezed vacuum states to obtain broadband reduction of quantum noise. Quantum noise is one of the major limitations to the sensitivity of these detectors. Advanced LIGO+, Advanced Virgo+, and KAGRA plan to generate frequency-dependent squeezed states by coupling a frequency-independent squeezed light state with a filter cavity. An alternative technique is under consideration, based on conditional squeezing with quantum entanglement: Einstein–Podolsky–Rosen (EPR) squeezing. In the EPR scheme, two vacuum entangled states, the signal field at ω 0 and the idler field at ω 0 + Δ , must be spatially separated with an optical resonator and sent to two separate homodyne detectors. In this framework, we have designed and tested a solid Fabry–Perot etalon, to be used in an EPR table-top experiment prototype, thermally controlled without the use of a control probe optical beam. This device can also be used in optical experiments where the use of a bright beam to control an optical resonator is not possible, or where a simpler optical device is preferred.

Funder

Italian Istituto Nazionale di Fisica Nucleare

EGO Consortium

Ministero dell’Istruzione, dell’Università e della Ricerca

LabEx UnivEarthS

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics,Engineering (miscellaneous),Electrical and Electronic Engineering

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