Squeezed States of Light for Future Gravitational Wave Detectors at a Wavelength of 1550 nm

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Meylahn, F.; Willke, B.; Vahlbruch, H.: Squeezed States of Light for Future Gravitational Wave Detectors at a Wavelength of 1550 nm. In: Physical Review Letters 129 (2022), Nr. 12, 121103. DOI: https://doi.org/10.1103/physrevlett.129.121103

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Abstract: 
The generation of strongly squeezed vacuum states of light is a key technology for future ground-based gravitational wave detectors (GWDs) to reach sensitivities beyond their quantum noise limit. For some proposed observatory designs, an operating laser wavelength of 1550 nm or around 2 μm is required to enable the use of cryogenically cooled silicon test masses for thermal noise reduction. Here, we present for the first time the direct measurement of up to 11.5 dB squeezing at 1550 nm over the complete detection bandwidth of future ground-based GWDs ranging from 10 kHz down to below 1 Hz. Furthermore, we directly observe a quantum shot-noise reduction of up to (13.5±0.1) dB at megahertz frequencies. This allows us to derive a precise constraint on the absolute quantum efficiency of the photodiode used for balanced homodyne detection. These results hold important insight regarding the quantum noise reduction efficiency in future GWDs, as well as for quantum information and cryptography, where low decoherence of nonclassical states of light is also of high relevance.
License of this version: CC BY 4.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2022
Appears in Collections:Fakultät für Mathematik und Physik

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1 image of flag of Germany Germany 13 41.94%
2 image of flag of United States United States 11 35.48%
3 image of flag of China China 3 9.68%
4 image of flag of Pakistan Pakistan 1 3.23%
5 image of flag of United Kingdom United Kingdom 1 3.23%
6 image of flag of France France 1 3.23%
7 image of flag of Europe Europe 1 3.23%

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