9~GHz measurement of squeezed light by interfacing silicon photonics and integrated electronics
arXiv:2009.14318 · doi:10.1038/s41566-020-00715-5
Abstract
Photonic quantum technology can be enhanced by monolithic fabrication of both the underpinning quantum hardware and the corresponding electronics for classical readout and control. Together, this enables miniaturisation and mass-manufacture of small quantum devices---such as quantum communication nodes, quantum sensors and sources of randomness---and promises the precision and scale of fabrication required to assemble useful quantum computers. Here we combine CMOS compatible silicon and germanium-on-silicon nano-photonics with silicon-germanium integrated amplification electronics to improve performance of on-chip homodyne detection of quantum light. We observe a 3 dB bandwidth of 1.7 GHz, shot-noise limited performance beyond 9 GHz and minaturise the required footprint to 0.84 mm. We use the device to observe quantum squeezed light, from 100 MHz to 9 GHz, generated in a lithium niobate waveguide. This demonstrates that an all-integrated approach yields faster homodyne detectors for quantum technology than has been achieved to-date and opens the way to full-stack integration of photonic quantum devices.
Nat. Photonics (2020)
References in corpus (7)
- Quantum Computing
- Integrated Photonic Quantum Technologies
- Universal Quantum Computation with Continuous-Variable Cluster States
- Near-degenerate quadrature-squeezed vacuum generation on a silicon-nitride chip
- Continuous variable entanglement on a chip
- Continuous-wave 6-dB-squeezed light with 2.5-THz-bandwidth from single-mode PPLN waveguide
- Tomographic reconstruction of the single-photon Fock state by high-frequency homodyne detection
Cited by in corpus (30)
- Quantum optics of soliton microcombs
- Continuous-variable quantum key distribution system: past, present, and future
- Few-cycle vacuum squeezing in nanophotonics
- A squeezed quantum microcomb on a chip
- Fabrication of low-loss quasi-single-mode PPLN waveguide and its application to a modularized broadband high-level squeezer
- Integrated Quantum Optical Phase Sensor
- 100 Gbps Integrated Quantum Random Number Generator Based on Vacuum Fluctuations
- Nonlinear integrated quantum photonics with AlGaAs
- 43-GHz bandwidth real-time amplitude measurement of 5-dB squeezed light using modularized optical parametric amplifier with 5G technology
- Building a large-scale quantum computer with continuous-variable optical technologies
- Non-Gaussian quantum state generation by multi-photon subtraction at the telecommunication wavelength
- Provably-secure quantum randomness expansion with uncharacterised homodyne detection
- Quantum-enhanced absorption spectroscopy with bright squeezed frequency combs
- Integrated Photonic Platforms for Quantum Technology: A Review
- Advantage of Coherent States in Ring Resonators over Any Quantum Probe Single-Pass Absorption Estimation Strategy
- Discrete-variable quantum key distribution with homodyne detection
- A 3.584 Tbps coherent receiver chip on InP-LiNbO3 wafer-level integration platform
- Strong nanophotonic quantum squeezing exceeding 3.5 dB in a foundry-compatible Kerr microresonator
- High-speed Source-Device-Independent Quantum Random Number Generator on a Chip
- Silicon photonics-integrated time-domain balanced homodyne detector in continuous-variable quantum key distribution
- Optomechanical cooling with coherent and squeezed light: the thermodynamic cost of opening the heat valve
- Demonstration of a bosonic quantum classifier with data re-uploading
- A theoretical framework for photon-subtraction with non-mode selective resources
- Cavity-enhanced detection of spin polarization in a microfabricated atomic vapor cell
- Continuous-variable quantum key distribution over 50.4 km fiber using integrated silicon photonic transmitter and receiver
- Roadmap on Integrated Quantum Photonics
- Deterministic multi-mode gates on a scalable photonic quantum computing platform
- Reconstructing the full modal structure of photonic states by stimulated emission tomography
- Shot-Noise Limited Homodyne Detection for MHz Quantum Light Characterisation in the 2 μm Band
- Highly integrated broadband entropy source for quantum random number generators based on vacuum fluctuations