Surface quantum dots with pure, coherent, and blinking-free single
photon emission
- URL: http://arxiv.org/abs/2207.13387v2
- Date: Fri, 12 May 2023 08:06:30 GMT
- Title: Surface quantum dots with pure, coherent, and blinking-free single
photon emission
- Authors: Xin Cao, Jingzhong Yang, Pengji Li, Tom Fandrich, Eddy P.
Rugeramigabo, Vlastimil K\v{r}\'apek, Chenxi Ma, Frederik Benthin, Robert
Keil, Benedikt Brechtken, Rolf J. Haug, Michael Oestreich, Yiteng Zhang,
Constantin Schmidt, Zhao An, Michael Zopf, Fei Ding
- Abstract summary: Epitaxially grown quantum dots are the best candidate for high-performance single photon emission.
Here, we show the complete restoration of optical properties from quantum dots grown directly on a semiconductor surface.
- Score: 5.23894569907188
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The surface of semiconductor nanostructures has a major impact on their
electronic and optical properties. Disorder and defects in the surface layer
typically cause degradation of charge carrier transport and radiative
recombination dynamics. However, surface vicinity is inevitable for many
scalable nano-optical applications. Epitaxially grown quantum dots are the best
candidate for high-performance single photon emission and show great potential
for quantum technologies. Yet, these emitters only reveal their excellent
properties if they are deeply embedded in a semiconductor host. Until today,
quantum dots close to surfaces yield weak, broad, and unstable emissions. Here,
we show the complete restoration of optical properties from quantum dots grown
directly on a semiconductor surface. The vanishing luminescence from the
as-grown sample turns into bright, ultra-stable, coherent and blinking-free
single photon emission after sulphur passivation. Under quasi-resonant
excitation, single photons are generated with 98.8% purity, 77%
indistinguishability, linewidths down to 4 $\mu$eV and 99.69% persistency
across 11 orders of magnitude in time. The emission is stable even after two
years and when being subjected to nanomanufacturing processes. Some
long-standing stumbling blocks for surface-dominated quantum dots are thereby
removed, unveiling new possibilities for hybrid nano-devices and applications
in quantum communication or sensing.
Related papers
- Room-temperature efficient single-photon generation from CdSe/ZnS nanoplateletes [0.0]
colloidal semiconductor nanoplatelets (NPLs) have emerged as a highly promising new class of materials.
NPLs with their atomic-scale thickness and one-dimensional quantum confinement are promising candidates for single-photon sources.
arXiv Detail & Related papers (2024-07-31T10:21:56Z) - Site-Controlled Purcell-Induced Bright Single Photon Emitters in Hexagonal Boron Nitride [62.170141783047974]
Single photon emitters hosted in hexagonal boron nitride (hBN) are essential building blocks for quantum photonic technologies that operate at room temperature.
We experimentally demonstrate large-area arrays of plasmonic nanoresonators for Purcell-induced site-controlled SPEs.
Our results offer arrays of bright, heterogeneously integrated quantum light sources, paving the way for robust and scalable quantum information systems.
arXiv Detail & Related papers (2024-05-03T23:02:30Z) - Highly photostable Zn-treated halide perovskite nanocrystals for
efficient single photon generation [0.0]
We fabricate and characterize in a systematic manner colloidal-treated $CsPbBr_3$ NCs obtained through $Zn2+$ ion doping at the Pb-site.
These doped NCs exhibit high single-photon purity, reduced blinking on a sub-millisecond timescale and stability of the bright state for excitation powers well above the saturation levels.
arXiv Detail & Related papers (2023-07-29T11:23:30Z) - Database of semiconductor point-defect properties for applications in
quantum technologies [54.17256385566032]
We have calculated over 50,000 point defects in various semiconductors including diamond, silicon carbide, and silicon.
We characterize the relevant optical and electronic properties of these defects, including formation energies, spin characteristics, transition dipole moments, zero-phonon lines.
We find 2331 composite defects which are stable in intrinsic silicon, which are then filtered to identify many new optically bright telecom spin qubit candidates and single-photon sources.
arXiv Detail & Related papers (2023-03-28T19:51:08Z) - Swing-up dynamics in quantum emitter cavity systems [0.0]
In the Super scheme, excitation of a quantum emitter is achieved with two off-resonant, red-detuned laser pulses.
We extend this promising method to quantum emitters, specifically semiconductor quantum dots, inside a resonant optical cavity.
arXiv Detail & Related papers (2023-03-22T14:42:57Z) - Single quantum emitters with spin ground states based on Cl bound
excitons in ZnSe [55.41644538483948]
We show a new type of single photon emitter with potential electron spin qubit based on Cl impurities inSe.
Results suggest single Cl impurities are suitable as single photon source with potential photonic interface.
arXiv Detail & Related papers (2022-03-11T04:29:21Z) - Room temperature single-photon emitters in silicon nitride [97.75917079876487]
We report on the first-time observation of room-temperature single-photon emitters in silicon nitride (SiN) films grown on silicon dioxide substrates.
As SiN has recently emerged as one of the most promising materials for integrated quantum photonics, the proposed platform is suitable for scalable fabrication of quantum on-chip devices.
arXiv Detail & Related papers (2021-04-16T14:20:11Z) - Optical repumping of resonantly excited quantum emitters in hexagonal
boron nitride [52.77024349608834]
We present an optical co-excitation scheme which uses a weak non-resonant laser to reduce transitions to a dark state and amplify the photoluminescence from quantum emitters in hexagonal boron nitride (hBN)
Our results are important for the deployment of atom-like defects in hBN as reliable building blocks for quantum photonic applications.
arXiv Detail & Related papers (2020-09-11T10:15:22Z) - Inverse-designed photon extractors for optically addressable defect
qubits [48.7576911714538]
Inverse-design optimization of photonic devices enables unprecedented flexibility in tailoring critical parameters of a spin-photon interface.
Inverse-designed devices will enable realization of scalable arrays of single-photon emitters, rapid characterization of new quantum emitters, sensing and efficient heralded entanglement schemes.
arXiv Detail & Related papers (2020-07-24T04:30:14Z) - Highly photo-stable Perovskite nanocubes: towards integrated single
photon sources based on tapered nanofibers [0.0]
We present a full analysis of the optical and quantum properties of highly efficient perovskite nanocubes synthesized with an established method.
We achieve for the first time the coupling of a single perovskite nanocube with a tapered optical nanofiber in order to aim for a compact integrated single photon source for future applications.
arXiv Detail & Related papers (2020-05-19T11:03:21Z) - Single artificial atoms in silicon emitting at telecom wavelengths [0.0]
We show the isolation of single optically-active point defects in a commercial silicon-on-insulator wafer implanted with carbon atoms.
These artificial atoms exhibit a bright, linearly polarized single-photon emission at telecom wavelengths suitable for long-distance propagation in optical fibers.
arXiv Detail & Related papers (2020-01-07T15:49:46Z)
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.