Novel 2D material hybrid photonic crystal nanocavity for optoelectronic devices

项目来源

日本学术振兴会基金(JSPS)

项目主持人

Fong CheeFai

项目受资助机构

国立研究開発法人理化学研究所

项目编号

24K17627

立项年度

2024

立项时间

未公开

研究期限

未知 / 未知

项目级别

国家级

受资助金额

4680000.00日元

学科

光工学および光量子科学関連

学科代码

未公开

基金类别

若手研究

关键词

Nanophotonics ; Photonic crystal ; Optical cavity ; semiconductor optics ; photonic crystal

参与者

未公开

参与机构

国立研究開発法人理化学研究所,開拓研究本部

项目标书摘要:I am currently preparing a manuscript which summarizes the results for hybrid cavities consisting of multiple 2D material flakes.I investigated the 2D materials and photonic crystal waveguide hybrid devices.I prepared photonic crystal waveguides using nanofabrication facilities at the University of Tokyo,while the 2D materials are prepared via mechanical exfoliation of bulk crystals.Onto these photonic crystal waveguides,I then transfer 2D materials such as hBN,WSe2 and MoTe2 in order to form a heterocavity on the waveguides.By performing photoluminescence and transmission measurements,I verified the formation of cavities on the prepared samples consistent with expectations based on simulation results.I also investigated heterostructures consisting of multiple 2D materials flakes stacked on the waveguides,observing the optical coupling between the flakes and the cavity-waveguide system.I intend to explore further properties and functionalities of the cavities with multiple 2D material flakes.In addition,I would also like to investigate different nanophotonic structures for coupling to 2D material such as the grating photonic crystal cavities which support air mode cavities with the potential for stronger coupling to emitters placed on its surface.Reason:I am currently preparing a manuscript which summarizes the results for hybrid cavities consisting of multiple 2D material flakes。Outline of Research at the Start:We propose a novel hybrid cavity,in which a suitably-sized 2D materials flake is combined with a photonic crystal waveguide post-fabrication.Through this approach,we aim to demonstrate high Q cavity formation,low threshold optically excited lasing,and eventually electrically pumped lasing。

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  • 1.Dielectric environment engineering via 2D material heterostructure formation on a hybrid photonic crystal nanocavity [Invited]

    • 关键词:
    • Heterojunctions;Hybrid materials;Molybdenum compounds;Multilayers;Nanophotonics;Optoelectronic devices;Photonic crystals;Refractive index;Tellurium compounds;Environment engineering;Hybrid integration;Hybrid photonic crystals;Local dielectrics;Nanophotonic structures;Optoelectronics devices;Photonic crystal nanocavity;Stackings;Tunables;Two-dimensional materials
    • Fong, C.F.;Yamashita, D.;Fang, N.;Chang, Y.-R.;Fujii, S.;Taniguchi, T.;Watanabe, K.;Kato, Y.K.
    • 《Optical Materials Express》
    • 2026年
    • 16卷
    • 3期
    • 期刊

    Hybrid integration of two-dimensional (2D) materials with nanophotonic structures has enabled compact and tunable optoelectronic devices. Yet, the influence of local dielectric perturbations introduced during integration remains underexplored, particularly for multilayer or heterostructure assemblies. Here, we demonstrate deliberate dielectric environment engineering of photonic crystal (PhC) nanocavities through sequential stacking of 2D material flakes. Building upon our previous finding that a monolayer can induce a self-aligned cavity, we show that multilayer and heterostructure stacking enable further post-fabrication control over cavity properties. The hybrid nanocavities maintain high optical quality under multiple transfers, and encapsulation with hexagonal boron nitride (hBN) yields nearly twofold recovery of the quality factor by effectively smoothing the refractive-index profile and reducing out-of-plane losses. These experimental results are consistent with numerical simulations. Enhanced photoluminescence and reduced emission lifetime from the MoTe2 flake on the hybrid cavity confirm Purcell-enhanced light-matter coupling. These results establish a robust and reconfigurable strategy for tuning cavity performance through controlled heterostructure assembly, expanding the design toolbox for scalable hybrid nanophotonic systems. Journal © 2026.

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  • 2.Exciton diamagnetic shifts and spin dynamics in lead halide perovskites under high magnetic fields

    • 关键词:
    • BINDING-ENERGY; EFFECTIVE MASSES; CHARGE-CARRIERS; SINGLE-CRYSTALS;QUANTUM DOTS; METHYLAMMONIUM; NANOCRYSTALS; SPECTROSCOPY; CH3NH3PBBR3;RELAXATION
    • Fong, Chee Fai;Do, Thi Thu Ha;Xing, Jun;Liu, Sheng;Prosnikov, M. A.;Christianen, Peter C. M.;Granados del Aguila, Andres
    • 《APL MATERIALS》
    • 2025年
    • 13卷
    • 9期
    • 期刊

    Semiconductor lead halide perovskites have attracted significant attention for various applications. Understanding the impact of material composition on optical properties is essential for optimizing device performance. Here, we performed magneto-optical spectroscopy on high-quality bulk CsPbBr3, MAPbBr3, and MAPbI3 single crystals under magnetic fields of up to 30 T. The results revealed distinctive excitonic responses to the magnetic field, with bromide-based perovskites exhibiting modest diamagnetic shifts, while MAPbI3 showed a more pronounced response, even including an emission peak with a negative diamagnetic coefficient. Analysis of the magnetic-field induced photoluminescence circular polarization revealed slow exciton spin dynamics, with comparable spin relaxation and radiative recombination times across all perovskites. Our insights enhance the understanding of the complex interactions between cationic and anionic influences, offering pathways for innovations in photovoltaics, optoelectronics, and quantum optics. (c) 2025 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license(https://creativecommons.org/licenses/by/4.0/).https://doi.org/10.1063/5.0277358

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  • 4.Self-Aligned Hybrid Nanocavities Using Atomically Thin Materials

    • 关键词:
    • Dielectric materials;Hybrid materials;III-V semiconductors;Molybdenum compounds;Monolayers;Q factor measurement;Tellurium compounds;Transition metals;Waveguides;American Chemical Society;Environment engineering;Hexagonal boron nitride;Light-matter interactions;Nano-cavities;Photonic structure;Self-aligned;Thin materials;Transition metal dichalcogenides (TMD);Two-dimensional
    • Fong, Chee Fai;Yamashita, Daiki;Fang, Nan;Fujii, Shun;Chang, Yih-Ren;Taniguchi, Takashi;Watanabe, Kenji;Kato, Yuichiro K.
    • 《ACS Photonics》
    • 2023年
    • 期刊

    Two-dimensional (2D) materials are increasingly being adopted in hybrid photonics via integration with photonic structures, including cavities. The utility of 2D materials for dielectric environment engineering in hybrid nanophotonic devices remains largely unexplored. We demonstrate self-aligned hybrid nanocavities in which 2D material flakes are used to form cavities locally wherever they are placed along the PhC waveguide postfabrication. We successfully fabricated such hybrid nanocavities with various 2D materials on silicon PhC waveguides, obtaining Q factors as high as 4.0 × 105. Remarkably, even monolayer flakes can provide sufficient local refractive index modulation to induce high Q nanocavity formation. We have also observed cavity PL enhancement in a self-aligned MoTe2 cavity device with an enhancement factor of about 15. Our results highlight the prospect of using such 2D material-induced PhC nanocavities to realize a wide range of photonic components for hybrid integrated photonic circuits. © 2024 The Authors. Published by American Chemical Society

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