Room-temperature continuous-wave indirect-bandgap transition lasing in an ultra-thin WS2 disk
- Authors
- Sung, Junghyun; Shin, Dongjin; Cho, HyunHee; Lee, Seong Won; Park, Seungmin; Kim, Young Duck; Moon, Jong Sung; Kim, Je-Hyung; Gong, Su-Hyun
- Issue Date
- 11월-2022
- Publisher
- NATURE PORTFOLIO
- Citation
- NATURE PHOTONICS, v.16, no.11, pp.792 - +
- Indexed
- SCIE
SCOPUS
- Journal Title
- NATURE PHOTONICS
- Volume
- 16
- Number
- 11
- Start Page
- 792
- End Page
- +
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/145652
- DOI
- 10.1038/s41566-022-01085-w
- ISSN
- 1749-4885
- Abstract
- Indirect-bandgap transition lasing, even under continuous-wave excitation at room temperature, is demonstrated in an ultra-thin WS2 disk. Small semiconductor lasers that can be integrated on a chip are essential for a wide range of optical applications, including optical computing, communication and sensing. Practical laser applications have only been developed with direct-bandgap materials because of a general belief that lasing action from indirect-bandgap materials is almost impossible. Here we report unexpected indirect-bandgap transition lasing in an ultra-thin WS2 disk. We demonstrate that a 50-nm-thick WS2 disk offers efficient optical gain and whispering gallery modes that are sufficient for lasing action. As a result, the WS2 disk exhibits indirect transition lasing, even under continuous-wave excitation at room temperature. Our experimental results are in close agreement with theoretical modelling for phonon-assisted photon lasing. The results derived from external cavity-free ultra-thin WS2 layers offer a new direction for van-der-Waals-material-based nanophotonics and introduce the possibility for optical devices based on indirect-bandgap materials.
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