DOAJ Open Access 2022

The “Squeeze Laser”

Roman Schnabel Axel Schonbeck

Abstrak

The level of quantum noise in measurements is bounded from below by the Heisenberg uncertainty principle, but it can be unequally distributed between two noncommuting observables: it can be &#x201C;squeezed.&#x201D; Since 2019, all gravitational-wave observatories have been using squeezed light for increasing the astronomical reach. Squeezed laser light is efficiently produced by degenerate parametric down-conversion in a nonlinear crystal located inside an optical resonator. A spontaneously generated initial pair of indistinguishable photons is amplified to a squeezed vacuum state. Overlapped with bright coherent light, the photo-electric measurement shows a sub-Poissonian photon statistics. Squeezed states have ample applications in nonlocal quantum sensing, device-independent quantum key distribution, and quantum computing. Here, we present our continuous-wave 1550-nm &#x201C;squeeze laser&#x201D; with a footprint of 80 &#x00D7; 80 cm. The well-defined output beam has an interference contrast of <inline-formula><tex-math notation="LaTeX">$\gtrsim 99\%$</tex-math></inline-formula> with an overlapped 10-mW beam being in an almost perfect TEM00 mode. The interference result shows 13-dB squeezing of the photon shot noise in balanced detection.

Penulis (2)

R

Roman Schnabel

A

Axel Schonbeck

Format Sitasi

Schnabel, R., Schonbeck, A. (2022). The “Squeeze Laser”. https://doi.org/10.1109/TQE.2022.3224686

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Informasi Jurnal
Tahun Terbit
2022
Sumber Database
DOAJ
DOI
10.1109/TQE.2022.3224686
Akses
Open Access ✓