Composite picosecond control of atomic state through a nanofiber
interface
- URL: http://arxiv.org/abs/2203.06716v4
- Date: Tue, 9 May 2023 12:36:54 GMT
- Title: Composite picosecond control of atomic state through a nanofiber
interface
- Authors: Yudi Ma, Ruijuan Liu, Lingjing Ji, Liyang Qiu, Saijun Wu, Dianqiang
Su, Yanting Zhao, Ni Yao and Wei Fang
- Abstract summary: Composite picosecond optical pulses with optimally tailored phases are able to control the atomic electric dipole transitions nearly perfectly.
This unprecedented ability would allow error-resilient atomic spectroscopy and open up novel nonlinear quantum optical research with atom-nanophotonic interfaces.
- Score: 2.0765679900082934
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Atoms are ideal quantum sensors and quantum light emitters. Interfacing atoms
with nanophotonic devices promises novel nanoscale sensing and quantum optical
functionalities. But precise optical control of atomic states in these devices
is challenged by the spatially varying light-atom coupling strength, generic to
nanophotonic. We demonstrate numerically that despite the inhomogenuity,
composite picosecond optical pulses with optimally tailored phases are able to
evanescently control the atomic electric dipole transitions nearly perfectly,
with $f>99\%$ fidelity across large enough volumes for {\it e.g.} controlling
cold atoms confined in near-field optical lattices. Our proposal is followed by
a proof-of-principle demonstration with a $^{85}$Rb vapor -- optical nanofiber
interface, where the excitation by an $N=3$ sequence of guided picosecond D1
control reduces the absorption of a co-guided nanosecond D2 probe by up to
$\sim70\%$. The close-to-ideal performance is corroborated by comparing the
absorption data across the parameter space with first-principle modeling of the
mesoscopic atomic vapor response. Extension of the composite technique to
$N\geq 5$ appears highly feasible to support arbitrary local control of atomic
dipoles with exquisite precision. This unprecedented ability would allow
error-resilient atomic spectroscopy and open up novel nonlinear quantum optical
research with atom-nanophotonic interfaces.
Related papers
- Tailoring Polarization in WSe$_2$ Quantum Emitters through Deterministic Strain Engineering [0.0]
Quantum emitters in transition metal dichalcogenides (TMDs) have emerged as a promising platform for generating single photons for optical quantum information processing.
We present an approach for deterministically controlling the polarization of fabricated quantum emitters in a diselenide (WSe$$) monolayer.
arXiv Detail & Related papers (2024-02-16T21:01:15Z) - Widely tunable solid-state source of single-photons matching an atomic
transition [0.18593647992779513]
Hybrid quantum technologies aim to harness the best characteristics of multiple quantum systems.
quantum dots embedded in semiconductor nanowires can produce highly pure, deterministic, and indistinguishable single-photons with high repetition.
atomic ensembles offer robust photon storage capabilities and strong optical nonlinearities that can be controlled with single-photons.
arXiv Detail & Related papers (2023-09-13T05:47:26Z) - Microwave-based quantum control and coherence protection of tin-vacancy
spin qubits in a strain-tuned diamond membrane heterostructure [54.501132156894435]
Tin-vacancy center (SnV) in diamond is a promising spin-photon interface with desirable optical and spin properties at 1.7 K.
We introduce a new platform that overcomes these challenges - SnV centers in uniformly strained thin diamond membranes.
The presence of crystal strain suppresses temperature dependent dephasing processes, leading to a considerable improvement of the coherence time up to 223 $mu$s at 4 K.
arXiv Detail & Related papers (2023-07-21T21:40:21Z) - Quantum-limited millimeter wave to optical transduction [50.663540427505616]
Long distance transmission of quantum information is a central ingredient of distributed quantum information processors.
Current approaches to transduction employ solid state links between electrical and optical domains.
We demonstrate quantum-limited transduction of millimeter-wave (mmwave) photons into optical photons using cold $85$Rb atoms as the transducer.
arXiv Detail & Related papers (2022-07-20T18:04:26Z) - Quantum density matrix theory for a laser without adiabatic elimination
of the population inversion: transition to lasing in the class-B limit [62.997667081978825]
No class-B quantum density-matrix model is available to date, capable of accurately describing coherence and photon correlations within a unified theory.
Here we carry out a density-matrix theoretical approach for generic class-B lasers, and provide closed equations for the photonic and atomic reduced density matrix in the Fock basis of photons.
This model enables the study of few-photon bifurcations and non-classical photon correlations in class-B laser devices, also leveraging quantum descriptions of coherently coupled nanolaser arrays.
arXiv Detail & Related papers (2022-05-26T16:33:51Z) - Silicon nitride waveguides with intrinsic single-photon emitters for
integrated quantum photonics [97.5153823429076]
We show the first successful coupling of photons from intrinsic single-photon emitters in SiN to monolithically integrated waveguides made of the same material.
Results pave the way toward the realization of scalable, technology-ready quantum photonic integrated circuitry.
arXiv Detail & Related papers (2022-05-17T16:51:29Z) - Single Photon Sources with Near Unity Collection Efficiencies by
Deterministic Placement of Quantum Dots in Nanoantennas [3.6654842121350257]
We present a method for directly locating single free-standing quantum emitters with high spatial accuracy.
We also employ non-blinking, high quantum yield quantum dots (QDs) for on-demand single-photon emission.
Taken together this approach results in a record-high collection efficiency of 85% of the single photons into a low NA of 0.5.
arXiv Detail & Related papers (2020-05-23T15:05:23Z) - Near-ideal spontaneous photon sources in silicon quantum photonics [55.41644538483948]
Integrated photonics is a robust platform for quantum information processing.
Sources of single photons that are highly indistinguishable and pure, that are either near-deterministic or heralded with high efficiency, have been elusive.
Here, we demonstrate on-chip photon sources that simultaneously meet each of these requirements.
arXiv Detail & Related papers (2020-05-19T16:46:44Z) - Quantum interface between light and a one-dimensional atomic system [58.720142291102135]
We investigate optimal conditions for the quantum interface between a signal photon pulse and one-dimensional chain consisting of a varied number of atoms.
The efficiency of interaction is mainly limited by achieved overlap and coupling of the waveguide evanescent field with the trapped atoms.
arXiv Detail & Related papers (2020-04-11T11:43:54Z) - The integration of photonic crystal waveguides with atom arrays in
optical tweezers [0.0]
We describe an apparatus that overcomes several significant barriers to current experimental progress with the goal of achieving strong quantum interactions of light and matter by way of single-atom tweezer arrays strongly coupled to photons in 1-D and 2-D PCWs.
Technology advances relate to efficient free-space coupling of light to and from guided modes of PCWs, silicate bonding of silicon chips within small glass vacuum cells, and deterministic, mechanical delivery of single-atom tweezer arrays to the near fields of photonic crystal waveguides.
arXiv Detail & Related papers (2020-03-02T22:45:18Z) - Dynamic control of Purcell enhanced emission of erbium ions in
nanoparticles [0.0]
We demonstrate the control of the Purcell enhanced emission of a small ensemble of erbium ions doped into nanoparticles.
We can tune the cavity on- and out of-resonance by controlling its length with sub-nanometer precision.
This allows us to shape in real time the Purcell enhanced emission of the ions and to achieve full control over the emitted photons' waveforms.
arXiv Detail & Related papers (2020-01-23T14:09:55Z)
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.