| Nanophotonics | |
| Room temperature wideband tunable photoluminescence of pulsed thermally annealed layered black phosphorus | |
| article | |
| Sarah A. Alodan1  Justin M. Gorham2  Frank W. DelRio3  Fadhel Alsaffar1  Ghadeer Aljalham1  Olaiyan Alolaiyan1  Chongwu Zhou4  Moh. R. Amer1  | |
| [1] Center of Excellence for Green Nanotechnologies, Joint Centers of Excellence Program, King Abdulaziz City for Science and Technology;Materials Measurement Science Division, Material Measurement Laboratory, National Institute of Standards and Technology;Applied Chemicals and Materials Division, Material Measurement Laboratory, National Institute of Standards and Technology;Department of Electrical and Computer Engineering, Viterbi School of Engineering, University of Southern California;Department of Electrical Engineering, Henry Samueli School of Engineering, University of California | |
| 关键词: black phosphorus; black phosphorus oxide; photoluminescence; tunable band gap; tunable light emission; two-dimensional materials; | |
| DOI : 10.1515/nanoph-2020-0244 | |
| 学科分类:社会科学、人文和艺术(综合) | |
| 来源: De Gruyter | |
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【 摘 要 】
Newly explored two-dimensional (2D) materials have shown promising optical properties, owning to the tunable band gap of the layered material with its thickness. A widely used method to achieve tunable light emission (or photoluminescence) is through thickness modulation, but this can only cover specific wavelengths. This approach limits the development of tunable optical devices with high spectral resolution over a wide range of wavelengths. Here, we report wideband tunable light emission of exfoliated black phosphorus nanosheets via a pulsed thermal annealing process in ambient conditions. Tunable anisotropic emission was observed between wavelengths of 590 and 720 nm with a spectral resolution of 5 nm. This emission can be maintained for at least 11 days when proper passivation coupled with adequate storage is applied. Using hyperspectral imaging X-ray photoelectron spectroscopy ( i -XPS), this tunable emission is found to be strongly dependent on the level of oxidation. We finally discuss the underlying mechanism responsible for the observed tunable emission and show that tunable emission is only observed in nanosheets with thicknesses of (70–125 nm) ± 10 nm with the maximum range achieved for nanosheets with thicknesses of 125 ± 10 nm. Our results shed some light on an emerging class of 2D oxides with potential in optoelectronic applications.
【 授权许可】
CC BY
【 预 览 】
| Files | Size | Format | View |
|---|---|---|---|
| RO202107200003184ZK.pdf | 5081KB |
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