Strain-tunable entangled-light-emitting diodes with high yield and fast operation speed
arXiv:1505.03026 · doi:10.1038/ncomms10067
Abstract
Triggered sources of entangled photons play crucial roles in almost any existing protocol of quantum information science. The possibility to generate these non-classical states of light with high speed and using electrical pulses could revolutionize the field. Entangled-light-emitting-diodes (ELEDs) based on semiconductor quantum dots (QDs) are at present the only devices that can address this task 5. However, ELEDs are plagued by a source of randomness that hampers their practical exploitation in the foreseen applications: the very low probability (~10-2) of finding QDs with sufficiently small fine-structure-splitting for entangled-photon-generation. Here, we overcome this hurdle by introducing the first strain-tunable ELEDs (S-ELEDs) that exploit piezoelectric-induced strains to tune QDs for entangled-photon-generation. We demonstrate that up to 30% of the QDs in S-ELEDs emit polarization-entangled photon pairs with entanglement-fidelities as high as f+ = 0.83(5). Driven at the highest operation speed of 400 MHz ever reported so far, S-ELEDs emerge as unique devices for high-data rate entangled-photon applications.
28 pages in total, including supplementary information. 5 figures
References in corpus (14)
- Experimental quantum teleportation
- Entangled Photon Pairs from Semiconductor Quantum Dots
- Indistinguishable photons from separated silicon-vacancy centers in diamond
- Observation of strongly entangled photon pairs from a nanowire quantum dot
- Electric-field-induced coherent coupling of the exciton states in a single quantum dot
- Single-photon emitting diode in silicon carbide
- Inversion of exciton level splitting in quantum dots
- Photonic crystal fibre source of photon pairs for quantum information processing
- Coherence of an Entangled Exciton-Photon State
- Local Quantum Dot Tuning on Photonic Crystal Chips
- Highly entangled photons from hybrid piezoelectric-semiconductor quantum dot devices
- Energy-tunable sources of entangled photons: a viable concept for solid-state-based quantum relays
- Entanglement on demand through time reordering
- Electrically addressing a single self-assembled quantum dot
Cited by in corpus (43)
- Quantum dots for photonic quantum information technology
- Semiconductor devices for entangled photon pair generation: a review
- Semiconductor quantum dots as an ideal source of polarization entangled photon pairs on-demand: a review
- Strain-tunable Single Photon Sources in WSe2 Monolayers
- Space-borne quantum memories for global quantum communication
- Solid-state ensemble of highly entangled photon sources at rubidium atomic transitions
- Entanglement Swapping with Semiconductor-generated Photons
- Bright nanoscale source of deterministic entangled photon pairs violating Bell's inequality
- Universal growth scheme for entanglement-ready quantum dots
- Entanglement and teleportation between polarization and wave-like encodings of an optical qubit
- Strain-Tuning of the Optical Properties of Semiconductor Nanomaterials by Integration onto Piezoelectric Actuators
- On-demand source of maximally entangled photon-pairs using the biexciton-exciton radiative cascade
- Photonic crystals to enhance light extraction from 2D materials
- Engineering of selective carrier injection in patterned arrays of single-quantum-dot entangled photon light-emitting diodes
- Non-Markovian features in semiconductor quantum optics: Quantifying the role of phonons in experiment and theory
- Quantum Teleportation with Imperfect Quantum Dots
- Nonlinear quantum dot optomechanics
- Free Electrons Can Induce Entanglement Between Photons
- GHz-clocked teleportation of time-bin qubits with a telecom C-band quantum dot
- Resolving the temporal evolution of line broadening in quantum emitters
- Polarization-entangled twin photons from two-photon quantum-dot emission
- Electrically driven and electrically tunable quantum light sources
- Generation of maximally entangled states and coherent control in quantum dot microlenses
- A tuneable telecom-wavelength entangled light emitting diode
- Electric-field-induced energy tuning of on-demand entangled-photon emission from self-assembled quantum dots
- Wavelength-tunable high-fidelity entangled photon sources enabled by dual Stark effects
- From strong to weak temperature dependence of the two-photon entanglement resulting from the biexciton cascade inside a cavity
- On-demand generation of higher-order Fock states in quantum-dot--cavity systems
- 1GHz clocked distribution of electrically generated entangled photon pairs
- Slow and fast light behavior of single photons from a quantum dot interacting with the excited state hyperfine structure of the Cesium D1-line
- Coherent coupling of dark and bright excitons with vibrational strain
- Opto-Mechanical Tuning of the Polarization Properties of Micropillar Cavity Systems with embedded Quantum Dots
- Electrically driven quantum light emission in electromechanically-tuneable photonic crystal cavities
- Current-injection quantum-entangled-pair emitter using droplet epitaxial quantum dots on GaAs(111)A
- Hyperfine-interaction limits polarization entanglement of photons from semiconductor quantum dots
- Single-photon light emitting diodes based on pre-selected quantum dots using a deterministic lithography technique
- Entanglement Dynamics of Molecular Exciton States in Coupled Quantum Dots
- Active reset of a radiative cascade for superequilibrium entangled photon generation
- Atomic-ordering-induced quantum phase transition between topological crystalline insulator and Z2 topological insulator
- All-optical tailoring of single-photon spectra in a quantum-dot microcavity system
- Fundamental intrinsic lifetimes in semiconductor self-assembled quantum dots
- Strain-induced exciton decomposition and anisotropic lifetime modulation in a GaAs micromechanical resonator
- Optimal electro-mechanical control of the excitonic fine structures of droplet epitaxial quantum dots