Research Theme 3: Scalable Quantum Photonics

Research Theme 3: Scalable Quantum Photonics

Teams in Research Theme 3 (RT-3) engineer nanophotonic environments suited for the precision placement (by RT-2) of the colloidal quantum dots (made by RT-1).

Quantum computers and next-generation communications systems require the development of new classes of light emitting materials and qubits, the fundamental building blocks of quantum networks, sensors, and distributed information processors. These applications rely on materials that strongly interact with light and can be readily processed and integrated at scale.

The complexity of integrating colloidal quantum dots into such devices has led to them being significantly underexplored in these applications. The opportunity for inter-disciplinary teams to work together in solving this is a great opportunity to build devices based on colloidal quantum dots, offering a unique path for them to serve as scalable quantum light sources and qubits.

RT-3’s collaborations with RT-1 provides a mechanism for device engineers to describe desired properties and inform the design from a molecular level. RT-3’s collaborations with RT-2 creates a design synergy for the development of new engineering environments and device architectures.

Find out more about the IMOD members participating in RT-3 research, and check out some of the recent RT-3 publications.

RT-3 Research Groups

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Recent RT-3 Publications

Topological photonics: Fundamental concepts, recent developments, and future directions

Topological photonics: Fundamental concepts, recent developments, and future directions

PHYSICAL REVIEW A, 2023, 180, 040101

https://doi.org/10.1103/PhysRevA.108.040101

Topological Edge Mode Tapering

Topological Edge Mode Tapering

ACS PHOTONICS, 2023, 10, 10, 3502-3507

https://doi.org/10.1021/acsphotonics.3c00463

Cryo-Compatible In Situ Strain Tuning of 2D Material-Integrated Nanocavity

Cryo-Compatible In Situ Strain Tuning of 2D Material-Integrated Nanocavity

ACS PHOTONICS, 2023, 10, 9, 3242-3247

https://doi.org/10.1021/acsphotonics.3c00662

Chiral Optical Nano-Cavity with Atomically Thin Mirrors

Chiral Optical Nano-Cavity with Atomically Thin Mirrors

Preprint:Arxiv

https://doi.org/10.48550/arXiv.2308.04574

Spin-selective strong light–matter coupling in a 2D hole gas-microcavity system

Spin-selective strong light–matter coupling in a 2D hole gas-microcavity system

NATURE PHOTONICS, 2023, 17, 912-916

https://doi.org/10.1038/s41566-023-01248-3

Optical conductivity and orbital magnetization of Floquet vortex states

Optical conductivity and orbital magnetization of Floquet vortex states

COMMUNICATIONS PHYSICS, 2023, 6, 149

https://doi.org/10.1038/s42005-023-01267-0

Visible Wavelength Flatband in a Gallium Phosphide Metasurface

Visible Wavelength Flatband in a Gallium Phosphide Metasurface

ACS PHOTONICS, 2023, 10, 8, 2456-2460

https://doi.org/10.1021/acsphotonics.3c00175

Design Rules for Obtaining Narrow Luminescence from Semiconductors Made in Solution

Design Rules for Obtaining Narrow Luminescence from Semiconductors Made in Solution

CHEMICAL REVIEWS, 2023, 123, 12, 7890-7952

https://doi.org/10.1021/acs.chemrev.3c00097

Optical pumping of electronic quantum Hall states with vortex light

Optical pumping of electronic quantum Hall states with vortex light

Preprint: Arxiv

https://doi.org/10.48550/arXiv.2306.03417

Radiative pumping of exciton-polaritons in 2D hybrid perovskites

Radiative pumping of exciton-polaritons in 2D hybrid perovskites

OPTICAL MATERIALS EXPRESS, 2023, 13, 6, 1655-1662

https://doi.org/10.1364/OME.485398

Design Rules for Obtaining Narrow Luminescence from Semiconductors Made in Solution

Design Rules for Obtaining Narrow Luminescence from Semiconductors Made in Solution

Preprint: ChemRxiv

https://doi.org/10.26434/chemrxiv-2023-r3f3x-v2

Spin-mediated Mott excitons

Spin-mediated Mott excitons

Phys. Rev. B., 2023, 107, 075111

https://doi.org/10.1103/PhysRevB.107.075111