Deterministic generation and nanophotonic integration of 2D quantum emitters for advanced quantum photonic functionalities

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초록

Quantum emitters (QEs) are essential building blocks for quantum applications, such as quantum communication, quantum computing and metrology. Two-dimensional (2D) materials, such as transition metal dichalcogenides (TMDs) and hexagonal boron nitride (hBN), are promising platforms for scalable QE generation due to their unique properties, including their compatibility with external photonic structures. Advances in defect engineering and strain manipulation enable precise localization of emission sites within these materials, while integration with nanophotonic structures, including cavities and waveguides, enhances photon emission through the Purcell effect. This integration supports quantum functionalities like single-photon routing and spin-photon interactions. Challenges include achieving precise QE placement and emission control, as environmental factors can affect QE purity and indistinguishability. Nonetheless, electrically driven QEs, strain-tunable emission, and the integration of van der Waals magnets present opportunities for compact, scalable quantum devices with on-demand single-photon sources and spin-based quantum memory, positioning 2D QEs as foundational for next-generation quantum devices.

키워드

quantum emitter2D materialsnanophotonic integrationquantum photonicsHEXAGONAL BORON-NITRIDESOLID-STATE SOURCERESONANCE FLUORESCENCESPONTANEOUS EMISSIONLOCALIZED EXCITONSPOINT-DEFECTSSEMICONDUCTORENHANCEMENTLIGHTDOTS
제목
Deterministic generation and nanophotonic integration of 2D quantum emitters for advanced quantum photonic functionalities
저자
So, Jae-Pil
DOI
10.1515/nanoph-2024-0629
발행일
2025-05
유형
Article
저널명
NANOPHOTONICS
14
10
페이지
1537 ~ 1551