Thermal noise generally greatly exceeds quantum noise in optomechanical devices unless the mechanical frequency is very high or the thermodynamic temperature is very low. This paper addresses the design concept for a novel optomechanical device capable of ultrahigh quality factors in the audio frequency band with negligible thermal noise. The proposed system consists of a minimally supported millimeter scale pendulum mounted in a double end-mirror sloshing cavity that is topologically equivalent to a membrane-in-the-middle cavity. The radiation pressure inside the high-finesse cavity allows for high optical stiffness, cancellation of terms which lead to unwanted negative damping and suppression of quantum radiation pressure noise. We solve ...
Preparing mechanical systems in their lowest possible entropy state, the quantum ground state, start...
In this work, we attempt the experimental demonstration of quantum effects in the motion of a macros...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Squeezed light—light with...
Thermal noise generally greatly exceeds quantum noise in optomechanical devices unless the mechanica...
Recent advances in micro- and nanofabrication techniques have led to corresponding improvement in th...
Abstract: In this work we study the thermal noise of two monolithically suspended mirrors in a table...
An outstanding goal of the optomechanics community, particularly in the field of gravitational wave ...
Generating nonclassical states of light by optomechanical coupling depends critically on the mechani...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
This electronic version was submitted by the student author. The certified thesis is available in th...
The thermal noise associated with mechanical dissipation is a ubiquitous limitation to the sensitivi...
We propose using optomechanical interaction to narrow the bandwidth of filter cavities for achieving...
4 pages, 5 figuresWe experimentally demonstrate the high-sensitivity optical monitoring of a micro-m...
We report on the cancellation of quantum backaction noise in an optomechanical cavity. We perform me...
Preparing mechanical systems in their lowest possible entropy state, the quantum ground state, start...
Preparing mechanical systems in their lowest possible entropy state, the quantum ground state, start...
In this work, we attempt the experimental demonstration of quantum effects in the motion of a macros...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Squeezed light—light with...
Thermal noise generally greatly exceeds quantum noise in optomechanical devices unless the mechanica...
Recent advances in micro- and nanofabrication techniques have led to corresponding improvement in th...
Abstract: In this work we study the thermal noise of two monolithically suspended mirrors in a table...
An outstanding goal of the optomechanics community, particularly in the field of gravitational wave ...
Generating nonclassical states of light by optomechanical coupling depends critically on the mechani...
Cavity optomechanics is a rapidly evolving field operating at the intersection of solid-state physic...
This electronic version was submitted by the student author. The certified thesis is available in th...
The thermal noise associated with mechanical dissipation is a ubiquitous limitation to the sensitivi...
We propose using optomechanical interaction to narrow the bandwidth of filter cavities for achieving...
4 pages, 5 figuresWe experimentally demonstrate the high-sensitivity optical monitoring of a micro-m...
We report on the cancellation of quantum backaction noise in an optomechanical cavity. We perform me...
Preparing mechanical systems in their lowest possible entropy state, the quantum ground state, start...
Preparing mechanical systems in their lowest possible entropy state, the quantum ground state, start...
In this work, we attempt the experimental demonstration of quantum effects in the motion of a macros...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Squeezed light—light with...