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Recent progress in room-temperature single-photon emission in quantum dots: the role of chirality and surface engineering.

Created on 09 Sep 2026

Authors

Sanuja Panda, Deepshikha Singh, Chayan Kanti Nandi

Published in

Nanoscale. Sep 09, 2026. Epub Sep 09, 2026.

Abstract

Single-photon emission (SPE) is an indispensable component of emerging quantum technologies, including quantum communication, computation, and sensing. While cryogenic platforms have demonstrated near-ideal SPE, their reliance on low-temperature operation limits scalability and practical deployment. This review focuses on recent progress toward efficient and stable room-temperature single-photon sources (RT-SPSs), with particular emphasis on semiconductor colloidal quantum dots (QDs) and metal-halide perovskite quantum dot (PQD) emitters based on key performance metrics such as photon purity, brightness, emission linewidth, and photostability. Special attention is given to emerging strategies that overcome room-temperature limitations, including surface and ligand engineering, defect control, and integration with advanced nanophotonic architectures. In particular, the role of chirality in QDs is highlighted as a powerful symmetry-breaking mechanism that enables polarization-selective emission, excitonic state control, and spin-dependent processes. Furthermore, coupling quantum emitters to plasmonic cavities, bound states in the continuum, and metasurfaces is discussed as an effective route to enhance light-matter interactions and access coherent regimes at ambient conditions. By consolidating recent experimental and theoretical advances, this review outlines key challenges, emerging solutions, and future directions toward scalable, RT-SPSs compatible with integrated quantum photonic platforms.

PMID:
42714377
Bibliographic data and abstract were imported from PubMed on 09 Sep 2026.

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