We design and demonstrate a homodyne detection scheme based on a glass-integrated optical device (GID) operating in the quantum regime, that is, able to detect genuine nonclassical features. Our device is entirely fabricated by femtosecond laser micromachining. The GID incorporates on the same chip a balanced waveguide beamsplitter and a thermo-optic phase shifter, allowing us to record homodyne traces at different phases and to perform reliable quantum state tomography. In particular, we show that the GID allows for the detection of nonclassical features of continuous-variable quantum states, such as squeezed states. (C) 2018 Optical Society of America
We report a versatile instrument, based on a monolithic optical parametric amplifier, which reliably...
For decades we have known that an optical parametric oscillator (OPO) generates a two-mode squeezed ...
Homodyne detection is the most effective detection scheme employed in quantum optics to characterize...
We design and demonstrate a homodyne detection scheme based on a glass-integrated optical device (GI...
Thesis: S.B., Massachusetts Institute of Technology, Department of Physics, 2014.Cataloged from PDF ...
Squeezed states of light addressed in this Thesis have proved to be the most readily accessible opti...
We report the experimental realization of squeezed quantum states of light, tailored for new applica...
The extraordinary sensitivity of the output field of an optical cavity to small quantum-scale displa...
Monitoring a mechanical object's motion, even with the gentle touch of light, fundamentally alters i...
Stable, low noise, infrared squeezed state tight at 1064 nm is generated by utilizing optical parame...
Driven by single photon detection requirements, the theory of arrays of off-on detectors has been de...
In this thesis, we demonstrate an array of photodetection theory and techniques bridging the tradit...
This thesis is concerned with the generation of non-classical quantum states of light, the photon-le...
Photonic quantum technology can be enhanced by monolithic fabrication of both the underpinning quant...
doi:10.1088/1367-2630/9/10/371 Abstract. We report the experimental realization of squeezed quantum ...
We report a versatile instrument, based on a monolithic optical parametric amplifier, which reliably...
For decades we have known that an optical parametric oscillator (OPO) generates a two-mode squeezed ...
Homodyne detection is the most effective detection scheme employed in quantum optics to characterize...
We design and demonstrate a homodyne detection scheme based on a glass-integrated optical device (GI...
Thesis: S.B., Massachusetts Institute of Technology, Department of Physics, 2014.Cataloged from PDF ...
Squeezed states of light addressed in this Thesis have proved to be the most readily accessible opti...
We report the experimental realization of squeezed quantum states of light, tailored for new applica...
The extraordinary sensitivity of the output field of an optical cavity to small quantum-scale displa...
Monitoring a mechanical object's motion, even with the gentle touch of light, fundamentally alters i...
Stable, low noise, infrared squeezed state tight at 1064 nm is generated by utilizing optical parame...
Driven by single photon detection requirements, the theory of arrays of off-on detectors has been de...
In this thesis, we demonstrate an array of photodetection theory and techniques bridging the tradit...
This thesis is concerned with the generation of non-classical quantum states of light, the photon-le...
Photonic quantum technology can be enhanced by monolithic fabrication of both the underpinning quant...
doi:10.1088/1367-2630/9/10/371 Abstract. We report the experimental realization of squeezed quantum ...
We report a versatile instrument, based on a monolithic optical parametric amplifier, which reliably...
For decades we have known that an optical parametric oscillator (OPO) generates a two-mode squeezed ...
Homodyne detection is the most effective detection scheme employed in quantum optics to characterize...