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Catalytically solid-phase self-organization of nanoporous SnS with optical depolarizability

  • Chih-Hsien Cheng
  • , Yu-Chieh Chi
  • , Chung-Lun Wu
  • , Chun-Jung Lin
  • , Ling-Hsuan Tsai
  • , Jung-Hung Chang
  • , Mu Ku Chen
  • , Min-Hsiung Shih
  • , Chao-Kuei Lee
  • , Chih-I Wu
  • , Din Ping Tsai
  • , Gong-Ru Lin*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The catalytic solid-phase synthesis of self-organized nanoporous tin sulfide (SnS) with enhanced absorption, manipulative transmittance and depolarization features is demonstrated. Using an ultralow radio-frequency (RF) sputtering power, the variation of the orientation angle between the anodized aluminum oxide (AAO) membrane and the axis of the sputtered ion beam detunes the catalytically synthesized SnS from nanorod to nanoporous morphology, along the sidewall of the AAO membrane. The ultraslow catalytic sputtering synthesis on the AAO at the RF plasma power of 20 W and the orientation angle of 0°regulates the porosity and integrality of nanoporous SnS, with average pore diameter of 80-150 nm. When transferring from planar to nanoporous structure, the phase composition changes from SnS to SnS2-Sn2S3, and the optical bandgap shrinks from 1.43 to 1.16 eV, due to the preferred crystalline orientation, which also contributes to an ultralow reflectance of <1% at 200-500 nm when both the transmittance and the surface scattering remain at their maxima. The absorption coefficient is enhanced by nearly one order of magnitude with its minimum of >5 × 104 cm-1 at the wavelength between 200 and 700 nm, due to the red-shifting of the absorption spectrum to at least 100 nm. The catalytically self-organized nanoporous SnS causes strong haze and beam divergence of 20°-30° by depolarized nonlinear scattering at the surface, which favors the solar energy conversion with reduced surface reflection and enhanced photon scattering under preserved transmittance.
Original languageEnglish
Pages (from-to)4579-4587
Number of pages9
JournalNanoscale
Volume8
Issue number8
Online published21 Jan 2016
DOIs
Publication statusPublished - 28 Feb 2016
Externally publishedYes

Funding

The authors thank the Ministry of Science and Technology, Taiwan, R.O.C., for financially supporting this study under grants MOST 103-2221-E002-042-MY3 and MOST-104-2221-E-002-117-MY3.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • TIN
  • FILMS
  • NANOWIRES
  • NANORODS
  • GROWTH

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