On-Chip Single-Photon Sifter
arXiv:1611.03245 · doi:10.1038/s41467-017-00486-8
Abstract
Quantum states of light play a pivotal role in modern science[1] and future photonic applications[2]. While impressive progress has been made in their generation and manipulation with high fidelities, the common table-top approach is reaching its limits for practical quantum applications. Since the advent of integrated quantum nanophotonics[3] different material platforms based on III-V nanostructures-, color centers-, and nonlinear waveguides[4-8] as on-chip light sources have been investigated. Each platform has unique advantages and limitations in terms of source properties, optical circuit complexity, and scaling potentials. However, all implementations face major challenges with efficient and tunable filtering of individual quantum states[4], scalable integration and deterministic multiplexing of on-demand selected quantum emitters[9], and on-chip excitation-suppression[10]. Here we overcome all of these challenges with a novel hybrid and scalable nanofabrication approach to generate quantum light on-chip, where selected single III-V quantum emitters are positioned and deterministically integrated in a CMOS compatible circuit[11] with controlled on-chip filtering and excitation-suppression.Furthermore, we demonstrate novel on-chip quantum wavelength division multiplexing, showing tunable routing of single-photons. Our reconfigurable quantum photonic circuits with a foot print one million times smaller than similar table-top approaches, offering outstanding excitation suppression of more than 95 dB and efficient routing of single photons over a bandwidth of 40 nm, are essential to unleash integrated quantum optical technologies full potential.
30 pages, 10 figures
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Cited by in corpus (47)
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- Hybrid integration methods for on-chip quantum photonics
- Hybrid integration of solid-state quantum emitters on a silicon photonic chip
- Single-photon quantum hardware: towards scalable photonic quantum technology with a quantum advantage
- Photonic Crystal Cavities from Hexagonal Boron Nitride
- Quantum dots for photonic quantum information technology
- Transfer-printed single photon sources coupled to wire waveguides
- Advances in silicon quantum photonics
- Nanowire quantum dots tuned to atomic resonances
- Purcell enhanced and indistinguishable single-photon generation from quantum dots coupled to on-chip integrated ring resonators
- Monolithic integration of single photon sources via evanescent coupling of tapered InP nanowires to SiN waveguides
- Integrated Single Photon Emitters
- Nanomechanical single-photon routing
- Strongly coupled single quantum dot-cavity system integrated on a CMOS-processed silicon photonic chip
- Near-unity indistinguishability single photon source for large-scale integrated quantum optics
- Tunable quantum emitters on large-scale foundry silicon photonics
- High-quality photonic entanglement based on a silicon chip
- In-situ wavelength tuning of quantum-dot single-photon sources integrated on a CMOS silicon chip
- On-chip generation and dynamic piezo-optomechanical rotation of single photons
- Self-Resonant u-Lasers of Colloidal Quantum Wells Constructed by Direct Deep Patterning
- Free spectral range electrical tuning of a high quality on-chip microcavity
- Controlled integration of selected detectors and emitters in photonic integrated circuits
- Information processing at the speed of light
- Scalable generation and detection of on-demand W states in nanophotonic circuits
- Quantum hydrodynamics of a single particle
- Coexistence of extended and localized states in finite-sized mosaic Wannier-Stark lattices
- A hybrid single quantum dot coupled cavity on a CMOS-compatible SiC photonic chip for Purcell-enhanced deterministic single-photon emission
- Optical and electronic properties of symmetric InAs/InGaAlAs/InP quantum dots formed by a ripening process in molecular beam epitaxy: a promising system for broad-range single-photon telecom emitters
- Dynamic strain modulation of a nanowire quantum dot compatible with a thin-film lithium niobate photonic platform
- A silicon photonic add-drop filter for quantum emitters
- Optically tunable photoluminescence and upconversion lasing on a chip
- Thermal release tape-assisted semiconductor membrane transfer process for hybrid photonic devices embedding quantum emitters
- Heterogeneous integration of single InAs/InP quantum dots with the SOI chip using direct bonding
- On-demand generation of entangled photons pairs in the telecom O-band from nanowire quantum dots
- Single-shot readout of a solid-state spin in a decoherence-free subspace
- Suspended Spot-Size Converters for Scalable Single-Photon Devices
- Growth of Aluminum Nitride on a Silicon Nitride Substrate for Hybrid Photonic Circuits
- On-chip nanomechanical filtering of quantum-dot single-photon sources
- Photo-Thermally Tunable Photon-Pair Generation in Dielectric Metasurfaces
- Heralded single-photon source based on ensemble of Raman active molecules
- A Concise Primer on Solid-State Quantum Emitters
- Hybrid Rabi interaction with traveling states of light
- Unidirectional output from a quantum-dot single-photon source hybrid integrated on silicon
- Coupling hBN quantum emitters to 1D photonic crystal cavities
- Single photon sources from two dimensional materials and their interfacing with plasmonic waveguides
- Integration of hBN quantum emitters in monolithically fabricated waveguides