Temperature and power-dependent photoluminescence spectroscopy in suspended WSe2 monolayer

光致发光 单层 光谱学 材料科学 功率(物理) 光电子学 分析化学(期刊) 物理 化学 纳米技术 热力学 量子力学 环境化学
作者
Y. Guerra,F W N Silva,Maykol C D Oliveira,Zhuohang Yu,Thais C. V. Carvalho,Clenilton Costa dos Santos,A. G. Souza Filho,Mauricio Terrones,Rafael S. Alencar,Bartolomeu C. Viana
出处
期刊:Journal of Physics D [IOP Publishing]
卷期号:57 (16): 165304-165304 被引量:4
标识
DOI:10.1088/1361-6463/ad211d
摘要

Abstract This work, the photoluminescence (PL) of a suspended monolayer of WSe 2 was investigated to avoid the substrate effect, and its evolution with temperature and excitation energy. Raman spectroscopy and PL demonstrated the monolayer characteristic of the sample due to the absence of the B 1 2 g peak along with a symmetric PL peak centered at approximately 1.65 eV. The PL spectrum exhibited two main emission bands attributed to a neutral exciton (X 0 ) and a trion (X T ), where X 0 showed a redshift with temperature variation from 10 K to 310 K, and the intensity ratio between the bands varied from 2.68 to 3.96 eV. The energy evolution of the bands as a function of temperature was analyzed using the modified Varshni equation, yielding an electron–phonon coupling constant with a value of 1.54 (2.11) for X 0 (X T ). The intensity behavior was studied using the multi-level model, which provided activation energies of 58.0 meV for X 0 and 94.6 meV for X T . The redshift of the mentioned bands is explained by the Urbach formalism, attributing this shift to an increase in phonon density in the material. Computational calculations demonstrated an increase in the material’s lattice parameter with rising temperature, resulting in an increase in the W–Se bond length and a decrease in the distance between Se atoms from different sublattices, causing the direct transition to decrease with temperature. In conclusion, this study showed that the observed evolution in the PL spectrum of the suspended WSe 2 monolayer could be related to the increase of phonon density in the material which is important for the future applications of 2D materials in optoelectronics.
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