The effect of room‐temperature plastic deformation in darkness on the photoluminescence properties of ZnS

Author:

Ogura Yu1ORCID,Nakamura Atsutomo2ORCID,Kameyama Tatsuya3,Kurokawa Yasuyoshi4,Tochigi Eita5,Shibata Naoya6,Torimoto Tsukasa3,Hoshino Sena1,Yokoi Tatsuya1,Matsunaga Katsuyuki17ORCID

Affiliation:

1. Department of Materials Physics Nagoya University Nagoya Japan

2. Department of Mechanical Science and Bioengineering Osaka University Toyonaka Osaka Japan

3. Department of Materials Chemistry Nagoya University Nagoya Japan

4. Department of Materials Process Engineering Nagoya University, Chikusa‐ku Nagoya Japan

5. Institute of Industrial Science The University of Tokyo Meguro‐ku Tokyo Japan

6. Institute of Engineering Innovation The University of Tokyo Bunkyo‐ku Tokyo Japan

7. Nanostructures Research Laboratory Japan Fine Ceramics Center Nagoya Japan

Abstract

AbstractInorganic semiconductors have been considered to be brittle at room temperature generally, but recently zinc sulfide (ZnS), a II–VI compound semiconductor, was found to exhibit extraordinarily large plasticity even at room temperature if it was deformed in darkness. Room‐temperature plastic deformation can achieve high density of glide dislocations in the crystal without significantly changing the point defect structure, and these dislocations themselves have a potential to provide unique functional properties different from those of the bulk. In this study, therefore, undoped ZnS crystals were plastically deformed at room temperature in darkness to generate only a large number of dislocations, and the changes in luminescence properties resulting from this process were investigated for the first time. As a result, we found that ZnS deformed in darkness exhibits characteristic photoluminescence and persistent luminescence emissions with a visible green color. SEM‐CL analyses also identified the emissions from the dislocations. Theoretical calculations indicated that individual dislocations in ZnS have the ability to trap photo‐excited carriers. Such changes in luminescence properties due to room temperature plastic deformation in darkness can be considered to originate from dislocations rather than point defects. In other words, the dislocations themselves serve as the significant recombination centers, realizing visible light emission.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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