Hostname: page-component-68945f75b7-gkscv Total loading time: 0 Render date: 2024-08-06T10:17:53.619Z Has data issue: false hasContentIssue false

Si@MoS2 Core-Shell Architecture: Characterizations and Implications for Nanophotonic Applications

Published online by Cambridge University Press:  30 July 2021

Yea-Shine Lee
Affiliation:
Department of Materials Science and Engineering, Northwestern University, United States
Jennifer DiStefano
Affiliation:
Department of Materials Science and Engineering, Northwestern University, United States
Roberto dos Reis
Affiliation:
Department of Materials Science and Engineering, Northwestern University, United States
Vinayak Dravid
Affiliation:
Department of Materials Science and Engineering, Northwestern University, United States

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Emerging Low-Dimensional Nanomaterials and Their Heterostructures
Copyright
Copyright © The Author(s), 2021. Published by Cambridge University Press on behalf of the Microscopy Society of America

References

Wang, H. et al. Resonance Coupling in Heterostructures Composed of Silicon Nanosphere and Monolayer WS2: A Magnetic-Dipole-Mediated Energy Transfer Process. ACS Nano 13, 17391750 (2019).CrossRefGoogle ScholarPubMed
Lepeshov, S. et al. Tunable Resonance Coupling in Single Si Nanoparticle–Monolayer WS2 Structures. ACS Appl. Mater. Interfaces 8 (2018).Google Scholar
DiStefano, G., et al, J.. Topology of transition metal dichalcogenides: the case of the core–shell architecture. Nanoscale 12, 2389723919 (2020).CrossRefGoogle ScholarPubMed
Wu, Z.-Q. et al. Gap-Mode Surface-Plasmon-Enhanced Photoluminescence and Photoresponse of MoS2. Advanced Materials 30, (2018).CrossRefGoogle ScholarPubMed
Kuznetsov, A. I., Miroshnichenko, A. E., Brongersma, M. L., Kivshar, Y. S. & Luk'yanchuk, B. Optically resonant dielectric nanostructures. Science 354, (2016).CrossRefGoogle ScholarPubMed
Grunes, L. A., Leapman, R. D., Wilker, C. N., Hoffmann, R. & Kunz, A. B. Oxygen K near-edge fine structure: An electron-energy-loss investigation with comparisons to new theory for selected 3 d Transition-metal oxides. Phys. Rev. B 25, 71577173 (1982).CrossRefGoogle Scholar
Eljarrat, A. et al. Retrieving the electronic properties of silicon nanocrystals embedded in a dielectric matrix by low-loss EELS. Nanoscale 6, 1497114983 (2014).CrossRefGoogle Scholar
Mkhoyan, K. A., Babinec, T., Maccagnano, S. E., Kirkland, E. J. & Silcox, J. Separation of bulk and surface-losses in low-loss EELS measurements in STEM. Ultramicroscopy 107, 345355 (2007).CrossRefGoogle ScholarPubMed
Forcherio, G. T., Benamara, M. & Roper, D. K. Electron Energy Loss Spectroscopy of Hot Electron Transport between Gold Nanoantennas and Molybdenum Disulfide by Plasmon Excitation. Advanced Optical Materials 5, 1600572 (2017).Google Scholar