TY - JOUR KW - cavity-spectroscopy KW - localized exciton KW - nano-cavity KW - plasmonic structures KW - purcell effect KW - tip-enhanced photoluminescence AU - Hyeongwoo Lee AU - Inki Kim AU - Chulho Park AU - Mingu Kang AU - Jinseong Choi AU - Kwang-Yong Jeong AU - Jungho Mun AU - Yeseul Kim AU - Jeonghoon Park AU - Markus Raschke AU - Hong-Gyu Park AU - Mun Jeong AU - Junsuk Rho AU - Kyoung-Duck Park AB - Abstract In atomically thin semiconductors, localized exciton (XL) coupled to light provides a new class of optical sources for potential applications in quantum communication. However, in most studies, XL photoluminescence (PL) from crystal defects has mainly been observed in cryogenic conditions because of their sub-wavelength emission region and low quantum yield at room temperature. Hybrid-modality of cavity-spectroscopy to induce and probe the XL emissions at the nanoscale in atomically thin semiconductors is presented. By placing a WSe2 monolayer on the two extremely sharp Au tips in a bowtie antenna with a radius of curvature of <1 nm, tensile strain of ≈0.3\% is effectively induced in a <30 nm region to create robust XL states. The Au tip then approaches the strained crystal region to enhance the XL emissions and probe them with tip-enhanced photoluminescence (TEPL) spectroscopy at room temperature. Through this triple-sharp-tips cavity-spectroscopy with <15 nm spatial resolution, TEPL enhancement as high as ≈4.0 × 104 by the Purcell effect is achieved, and peak energy shifts of XL up to ≈40 meV are observed. This approach combining nano-cavity and -spectroscopy provides a systematic way to induce and probe the radiative emission of localized excitons in 2D semiconductors offering new strategies for dynamic quantum nano-optical devices. BT - Advanced Functional Materials DA - 2021-06 DO - 10.1002/adfm.202102893 M1 - n/a N2 - Abstract In atomically thin semiconductors, localized exciton (XL) coupled to light provides a new class of optical sources for potential applications in quantum communication. However, in most studies, XL photoluminescence (PL) from crystal defects has mainly been observed in cryogenic conditions because of their sub-wavelength emission region and low quantum yield at room temperature. Hybrid-modality of cavity-spectroscopy to induce and probe the XL emissions at the nanoscale in atomically thin semiconductors is presented. By placing a WSe2 monolayer on the two extremely sharp Au tips in a bowtie antenna with a radius of curvature of <1 nm, tensile strain of ≈0.3\% is effectively induced in a <30 nm region to create robust XL states. The Au tip then approaches the strained crystal region to enhance the XL emissions and probe them with tip-enhanced photoluminescence (TEPL) spectroscopy at room temperature. Through this triple-sharp-tips cavity-spectroscopy with <15 nm spatial resolution, TEPL enhancement as high as ≈4.0 × 104 by the Purcell effect is achieved, and peak energy shifts of XL up to ≈40 meV are observed. This approach combining nano-cavity and -spectroscopy provides a systematic way to induce and probe the radiative emission of localized excitons in 2D semiconductors offering new strategies for dynamic quantum nano-optical devices. PY - 2021 EP - 2102893 T2 - Advanced Functional Materials TI - Inducing and Probing Localized Excitons in Atomically Thin Semiconductors via Tip-Enhanced Cavity-Spectroscopy UR - https://onlinelibrary.wiley.com/doi/abs/10.1002/adfm.202102893 ER -