Nonlinear forces allow motion of a mechanical oscillator to be squeezed below the zero-point motion. Of existing methods, mechanical parametric amplification is relatively accessible, but previously thought to be limited to 3 dB of squeezing in the steady state. We consider the effect of applying continuous weak measurement and feedback to this system. If the parametric drive is optimally detuned from resonance, correlations between the quadratures of motion allow unlimited steady-state squeezing. Compared to backaction evasion, we demonstrate that the measurement strength, temperature and efficiency requirements for quantum squeezing are significantly relaxed
It has been predicted and experimentally demonstrated that by injecting squeezed light into an optom...
We review a scheme for performing a backaction-evading measurement of one mechanical quadrature in a...
We show that the nanoresonator position can be squeezed significantly below the ground state level b...
We experimentally surpass the 3 dB limit to steady-state parametric squeezing of a mechanical oscill...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
The combination of parametric driving and quantum measurement allows mechanical squeezing far surpas...
Quantum mechanics places limits on the minimum energy of a harmonic oscillator via the ever-present ...
We discuss how large amounts of steady-state quantum squeezing (beyond 3 dB) of a mechanical resonat...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
Recently it has been demonstrated that the combination of continuous position detection with detuned...
We study the quantum measurement of a cantilever using a parametrically coupled electromagnetic cavi...
We revisit quantum state preparation of an oscillator by continuous linear position measurement. Qui...
It has been predicted and experimentally demonstrated that by injecting squeezed light into an optom...
We review a scheme for performing a backaction-evading measurement of one mechanical quadrature in a...
We show that the nanoresonator position can be squeezed significantly below the ground state level b...
We experimentally surpass the 3 dB limit to steady-state parametric squeezing of a mechanical oscill...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
We use a reservoir engineering technique based on two-tone driving to generate and stabilize a quant...
The combination of parametric driving and quantum measurement allows mechanical squeezing far surpas...
Quantum mechanics places limits on the minimum energy of a harmonic oscillator via the ever-present ...
We discuss how large amounts of steady-state quantum squeezing (beyond 3 dB) of a mechanical resonat...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
According to quantum mechanics, a harmonic oscillator can never be completely at rest. Even in the g...
Recently it has been demonstrated that the combination of continuous position detection with detuned...
We study the quantum measurement of a cantilever using a parametrically coupled electromagnetic cavi...
We revisit quantum state preparation of an oscillator by continuous linear position measurement. Qui...
It has been predicted and experimentally demonstrated that by injecting squeezed light into an optom...
We review a scheme for performing a backaction-evading measurement of one mechanical quadrature in a...
We show that the nanoresonator position can be squeezed significantly below the ground state level b...