43-GHz bandwidth real-time amplitude measurement of 5-dB squeezed light
using modularized optical parametric amplifier with 5G technology
- URL: http://arxiv.org/abs/2205.14061v2
- Date: Mon, 30 May 2022 18:23:01 GMT
- Title: 43-GHz bandwidth real-time amplitude measurement of 5-dB squeezed light
using modularized optical parametric amplifier with 5G technology
- Authors: Asuka Inoue, Takahiro Kashiwazaki, Taichi Yamashima, Naoto Takanashi,
Takushi Kazama, Koji Enbutsu, Kei Watanabe, Takeshi Umeki, Mamoru Endo, Akira
Furusawa
- Abstract summary: Homodyne detectors for quadrature-phase amplitude measurements have been the major factor limiting the clock frequency.
We developed a real-time amplitude measurement method using a modular optical parametric amplifier (OPA) and a broadband balanced photodiode.
The marriage of CVOQIP and 5G technology arranged by the modular OPA will lead to a paradigm shift from the conventional method of using stationary qubits.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Continuous-variable optical quantum information processing (CVOQIP), where
quantum information is encoded in a traveling wave of light called a flying
qubit, is a candidate for a practical quantum computer with high clock
frequencies. Homodyne detectors for quadrature-phase amplitude measurements
have been the major factor limiting the clock frequency. Here, we developed a
real-time amplitude measurement method using a modular optical parametric
amplifier (OPA) and a broadband balanced photodiode that is commercially used
for coherent wavelength-division multiplexing telecommunication of the
fifth-generation mobile communication systems (5G). The OPA amplifies one
quadrature-phase component of the quantum-level signal to a loss-tolerant
macroscopic level, and acts as a "magic wand," which suppresses the loss after
the OPA from 92.4\% to only 0.4\%. When the method was applied to a broadband
squeezed vacuum with a center wavelength of 1545.32 nm, we observed 5.2 $\pm$
0.5 dB of squeezing from DC to 43 GHz without any loss correction. The marriage
of CVOQIP and 5G technology arranged by the modular OPA will lead to a paradigm
shift from the conventional method of using stationary qubits, where the
information is encoded in a standing wave system, to a method using flying
qubits for ultra-fast practical quantum computation. This means that quantum
computer research will move from the stage of developing machines that execute
only specific quantum algorithms to a stage of developing machines that can
outperform classical computers in running any algorithm.
Related papers
- Real-time observation of picosecond-timescale optical quantum
entanglement toward ultrafast quantum information processing [0.0]
Entanglement is a fundamental resource of various optical quantum-information-processing (QIP) applications.
We report real-time observation of ultrafast optical Einstein-Podolsky-Rosen correlation at a picosecond timescale in a continuous-wave (CW) system.
arXiv Detail & Related papers (2024-03-12T06:32:20Z) - High-rate Generation and State Tomography of Non-Gaussian Quantum States
for Ultra-fast Clock Frequency Quantum Processors [0.0]
We show high-rate generation of broadband non-Gaussian states and their quantum tomography.
We have successfully demonstrated non-Gaussian state generation at a 0.9 MHz rate.
If we can overcome the limitation of the timing jitter of superconducting detector, non-Gaussian state generation and detection at GHz rate, or even THz rate, for optical quantum processors might be possible with OPAs.
arXiv Detail & Related papers (2024-02-27T10:57:23Z) - Quantum state preparation of gravitational waves [0.0]
We show a quantum circuit capable of efficiently encoding analytical approximations to gravitational wave signal waveforms.
gate cost of the proposed method is considered and compared to a state preparation routine for arbitrary amplitudes.
We demonstrate through a quantum simulation, that is limited to 28 qubits, the encoding of a second post-Newtonian inspiral waveform with a fidelity compared to the desired state of 0.995.
arXiv Detail & Related papers (2023-06-19T17:17:59Z) - Optimal quantum control via genetic algorithms for quantum state
engineering in driven-resonator mediated networks [68.8204255655161]
We employ a machine learning-enabled approach to quantum state engineering based on evolutionary algorithms.
We consider a network of qubits -- encoded in the states of artificial atoms with no direct coupling -- interacting via a common single-mode driven microwave resonator.
We observe high quantum fidelities and resilience to noise, despite the algorithm being trained in the ideal noise-free setting.
arXiv Detail & Related papers (2022-06-29T14:34:00Z) - Fully on-chip photonic turnkey quantum source for entangled qubit/qudit
state generation [0.0]
Integrated photonics has recently become a leading platform for the realization and processing of optical entangled quantum states in chip formats.
Here we demonstrate a fully integrated quantum light source, which overcomes these challenges through the combined integration of a laser cavity.
The hybrid quantum source employs an electrically-pumped InP gain section and a Si$_3$N$_4$ low-loss microring filter system.
arXiv Detail & Related papers (2022-06-17T12:14:21Z) - Slowing down light in a qubit metamaterial [98.00295925462214]
superconducting circuits in the microwave domain still lack such devices.
We demonstrate slowing down electromagnetic waves in a superconducting metamaterial composed of eight qubits coupled to a common waveguide.
Our findings demonstrate high flexibility of superconducting circuits to realize custom band structures.
arXiv Detail & Related papers (2022-02-14T20:55:10Z) - Spectral control of nonclassical light using an integrated thin-film
lithium niobate modulator [5.119503410288866]
We demonstrate frequency shifting and bandwidth compression of nonclassical light using an integrated thin-film lithium niobate (TFLN) phase modulator.
We achieve record-high electro-optic frequency shearing of telecom single photons over terahertz range.
Our results showcase the viability and promise of on-chip quantum spectral control for scalable photonic quantum information processing.
arXiv Detail & Related papers (2021-12-18T16:38:00Z) - Interleaving: Modular architectures for fault-tolerant photonic quantum
computing [50.591267188664666]
Photonic fusion-based quantum computing (FBQC) uses low-loss photonic delays.
We present a modular architecture for FBQC in which these components are combined to form "interleaving modules"
Exploiting the multiplicative power of delays, each module can add thousands of physical qubits to the computational Hilbert space.
arXiv Detail & Related papers (2021-03-15T18:00:06Z) - Rapid characterisation of linear-optical networks via PhaseLift [51.03305009278831]
Integrated photonics offers great phase-stability and can rely on the large scale manufacturability provided by the semiconductor industry.
New devices, based on such optical circuits, hold the promise of faster and energy-efficient computations in machine learning applications.
We present a novel technique to reconstruct the transfer matrix of linear optical networks.
arXiv Detail & Related papers (2020-10-01T16:04:22Z) - A Frequency-Multiplexed Coherent Electro-Optic Memory in Rare Earth
Doped Nanoparticles [94.37521840642141]
Quantum memories for light are essential components in quantum technologies like long-distance quantum communication and distributed quantum computing.
Recent studies have shown that long optical and spin coherence lifetimes can be observed in rare earth doped nanoparticles.
We report on coherent light storage in Eu$3+$:Y$$O$_3$ nanoparticles using the Stark Echo Modulation Memory (SEMM) quantum protocol.
arXiv Detail & Related papers (2020-06-17T13:25:54Z) - Frequency-Domain Quantum Interference with Correlated Photons from an
Integrated Microresonator [96.25398432840109]
We report frequency-domain Hong-Ou-Mandel interference with spectrally distinct photons generated from a chip-based microresonator.
Our work establishes four-wave mixing as a tool for selective high-fidelity two-photon operations in the frequency domain.
arXiv Detail & Related papers (2020-03-14T01:48:39Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.