Optical absorption in 2D MoS<sub>2</sub> monolayers conformally grown on 3D Si and SiO<sub>2</sub> nanocone arrays

ORAL

Abstract

We prepared 2D MoS2 monolayers conformally coated on Si and SiO2 nanocone (NC) arrays using metal organic chemical vapor deposition technique, and investigated the influences of the refractive indices of 3D NCs on the optical properties of 2D MoS2 monolayers. The height, bottom diameter, and the period of the hexagonal Si NC array were 460, 250, and 300 nm, respectively. The SiO2 NC array was prepared by thermal oxidation of the Si NC array. The photoluminescence and Raman intensities of the MoS2 monolayer on the SiO2 NC were higher than those on the Si NC, although the Si NC exhibited much lower optical reflectivity in the visible wavelength range compared with the SiO2 NC. Numerical calculations showed that the strongly confined light in the high refractive index Si NC prevented a large electric field formation at the NC surface. In contrast, the weak light confinement in the low refractive index SiO2 NC resulted in a large electric field intensity and enhanced absorption in the MoS2 monolayer on the SiO2 NC. This work demonstrates that the 2D MoS2 and 3D Si hybrid nanostructures can provide a useful means to realize high-performance optoelectronic devices.

Presenters

  • Eunah Kim

    • Department of Physics, Ewha Womans University
    • Physics, Ewha Womans University

Authors

  • Eunah Kim

    • Department of Physics, Ewha Womans University
    • Physics, Ewha Womans University
  • Jin-Woo Cho

    • Applied Physics, Kyung Hee University
  • Tri Nguyen

    • Department of Physics and Energy Harvest Storage Research Center, University of Ulsan
    • Department of Physics and Energy Harvest-Storage Research Center, University of Ulsan
    • Physics and Energy Harvest Storage Research Center, University of Ulsan
  • Trang Thi Thu Nguyen

    • Physics, Ewha Womans University
  • Seokhyun Yoon

    • Department of Physics, Ewha Womans University
    • Physics, Ewha Womans University
  • Sun-Kyung Kim

    • Applied Physics, Kyung Hee University
  • Yong Soo Kim

    • Physics and Energy Harvest Storage Research Center, University of Ulsan
    • University of Ulsan
  • Dongwook Kim

    • Department of Physics, Ewha Womans University
    • Physics, Ewha Womans University