| openaire: EC/H2020/732894/EU//HOTQuantum mechanics sets a limit for the precision of continuous measurement of the position of an oscillator. We show how it is possible to measure an oscillator without quantum back-action of the measurement by constructing one effective oscillator from two physical oscillators. We realize such a quantum mechanics-free subsystem using two micromechanical oscillators, and show the measurements of two collective quadratures while evading the quantum back-action by 8 decibels on both of them, obtaining a total noise within a factor of 2 of the full quantum limit. This facilitates the detection of weak forces and the generation and measurement of nonclassical motional states of the oscillators. Moreover, we di...
We revisit quantum state preparation of an oscillator by continuous linear position measurement. Qui...
We address extended systems interacting with classical fluctuating environments and analyze the use ...
When carrying out ultrasensitive continuous measurements of position, one must ultimately confront t...
The standard quantum limit constrains the precision of an oscillator position measurement. It arises...
The standard quantum limit constrains the precision of an oscillator position measurement. It arises...
By coupling a macroscopic mechanical oscillator to two microwave cavities, we simultaneously prepare...
We propose here a fully backaction-evading scheme for the measurement of the entanglement between tw...
Quantum mechanics is potentially advantageous for certain information-processing tasks, but its prob...
The application of quantum mechanics to macroscopic motion suggests many counterintuitive phenomena....
When measuring the position of a mechanical oscillator, quantum mechanics imposes a strict limit on ...
Under a strong quantum measurement, the motion of an oscillator is disturbed by the measurement back...
We study the quantum measurement of a cantilever using a parametrically coupled electromagnetic cavi...
In quantum mechanics, the Heisenberg uncertainty principle places a fundamental limit in the measure...
Under a strong quantum measurement, the motion of an oscillator is disturbed by the measurement bac...
Several high-precision physics experiments are approaching a level of sensitivity at which the intri...
We revisit quantum state preparation of an oscillator by continuous linear position measurement. Qui...
We address extended systems interacting with classical fluctuating environments and analyze the use ...
When carrying out ultrasensitive continuous measurements of position, one must ultimately confront t...
The standard quantum limit constrains the precision of an oscillator position measurement. It arises...
The standard quantum limit constrains the precision of an oscillator position measurement. It arises...
By coupling a macroscopic mechanical oscillator to two microwave cavities, we simultaneously prepare...
We propose here a fully backaction-evading scheme for the measurement of the entanglement between tw...
Quantum mechanics is potentially advantageous for certain information-processing tasks, but its prob...
The application of quantum mechanics to macroscopic motion suggests many counterintuitive phenomena....
When measuring the position of a mechanical oscillator, quantum mechanics imposes a strict limit on ...
Under a strong quantum measurement, the motion of an oscillator is disturbed by the measurement back...
We study the quantum measurement of a cantilever using a parametrically coupled electromagnetic cavi...
In quantum mechanics, the Heisenberg uncertainty principle places a fundamental limit in the measure...
Under a strong quantum measurement, the motion of an oscillator is disturbed by the measurement bac...
Several high-precision physics experiments are approaching a level of sensitivity at which the intri...
We revisit quantum state preparation of an oscillator by continuous linear position measurement. Qui...
We address extended systems interacting with classical fluctuating environments and analyze the use ...
When carrying out ultrasensitive continuous measurements of position, one must ultimately confront t...