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Classical Pendulum Feels Quantum Back-Action

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Classical Pendulum Feels Quantum Back-Action
Lowest price (incl. delivery)
14 324,00 JPY
Typical price1 089,65 PLN
Lowest (90 days)71,50 PLN
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Last updated1 săptămână în urmă
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2026-08-08 2026-08-15
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2026-08-0884,99
2026-08-1571,50
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SP SpringerNatureLink Shop INT 14 299,00 JPY 25,00 JPY 14 324,00 JPY Disponibil 6 zile în urmă View offer
SP Springer Nature Author 14 299,00 JPY 15,00 JPY 14 314,00 JPY Disponibil 1 săptămână în urmă View offer
SP SpringerNatureLink Shop INT 99,99 USD 19,00 USD 118,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 109,99 USD 25,00 USD 134,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 109,99 USD 15,00 USD 124,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 118,00 EUR 19,00 EUR 137,00 EUR Disponibil 6 zile în urmă View offer

Prețurile și disponibilitatea se pot modifica. Ultima actualizare: 08.08.2026 23:21.

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In this thesis, ultimate sensitive measurement for weak force imposed on a suspended mirror is performed with the help of a laser and an optical cavity for the development of gravitational-wave detectors. According to the Heisenberg uncertainty principle, such measurements are subject to a fundamental noise called quantum noise, which arises from the quantum nature of a probe (light) and a measured object (mirror). One of the sources of quantum noise is the quantum back-action, which arises from the vacuum fluctuation of the light. It sways the mirror via the momentum transferred to the mirror upon its reflection for the measurement. The author discusses a fundamental trade-off between sensitivity and stability in the macroscopic system, and suggests using a triangular cavity that can avoid this trade-off. The development of an optical triangular cavity is described and its characterization of the optomechanical effect in the triangular cavity is demonstrated. As a result, for the first time in the world the quantum back-action imposed on the 5-mg suspended mirror is significantly evaluated. This work contributes to overcoming the standard quantum limit in the future.

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