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Black Phosphorene/MoS2 van der Waals heterostructure: Electronic and optical properties

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Fecha
2024
Autor
González-Reyes R
Correa J.D
Nava-Maldonado F.M
Rodríguez-Magdaleno K.A
Mora-Ramos M.E
Martínez-Orozco J.C.

Citación

       
TY - GEN T1 - Black Phosphorene/MoS2 van der Waals heterostructure: Electronic and optical properties Y1 - 2024 UR - http://hdl.handle.net/11407/8406 PB - Elsevier B.V. AB - In this study, we use density functional theory to calculate the optical and electronic properties of a black-phosphorene/MoS2 stack. We have considered different exchange–correlation functionals to account for the effects of van der Waals interaction and examined the impact of stacking order/layers alignment on the opto-electronic properties. Our findings reveal that the heterostructure exhibits a reduction in band gap and a modification of optical properties compared to single monolayers. The optical response was evaluated using an independent particle approximation to get the dielectric function's imaginary part, which showed a strong absorption peak in the visible and ultraviolet regions. This feature could be helpful for optoelectronic applications. Nonetheless, the stacking order has a negligible effect on the electronic and optical properties of the BP/MoS2 bilayer. © 2023 Elsevier B.V. ER - @misc{11407_8406, author = {}, title = {Black Phosphorene/MoS2 van der Waals heterostructure: Electronic and optical properties}, year = {2024}, abstract = {In this study, we use density functional theory to calculate the optical and electronic properties of a black-phosphorene/MoS2 stack. We have considered different exchange–correlation functionals to account for the effects of van der Waals interaction and examined the impact of stacking order/layers alignment on the opto-electronic properties. Our findings reveal that the heterostructure exhibits a reduction in band gap and a modification of optical properties compared to single monolayers. The optical response was evaluated using an independent particle approximation to get the dielectric function's imaginary part, which showed a strong absorption peak in the visible and ultraviolet regions. This feature could be helpful for optoelectronic applications. Nonetheless, the stacking order has a negligible effect on the electronic and optical properties of the BP/MoS2 bilayer. © 2023 Elsevier B.V.}, url = {http://hdl.handle.net/11407/8406} }RT Generic T1 Black Phosphorene/MoS2 van der Waals heterostructure: Electronic and optical properties YR 2024 LK http://hdl.handle.net/11407/8406 PB Elsevier B.V. AB In this study, we use density functional theory to calculate the optical and electronic properties of a black-phosphorene/MoS2 stack. We have considered different exchange–correlation functionals to account for the effects of van der Waals interaction and examined the impact of stacking order/layers alignment on the opto-electronic properties. Our findings reveal that the heterostructure exhibits a reduction in band gap and a modification of optical properties compared to single monolayers. The optical response was evaluated using an independent particle approximation to get the dielectric function's imaginary part, which showed a strong absorption peak in the visible and ultraviolet regions. This feature could be helpful for optoelectronic applications. Nonetheless, the stacking order has a negligible effect on the electronic and optical properties of the BP/MoS2 bilayer. © 2023 Elsevier B.V. OL Spanish (121)
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Resumen
In this study, we use density functional theory to calculate the optical and electronic properties of a black-phosphorene/MoS2 stack. We have considered different exchange–correlation functionals to account for the effects of van der Waals interaction and examined the impact of stacking order/layers alignment on the opto-electronic properties. Our findings reveal that the heterostructure exhibits a reduction in band gap and a modification of optical properties compared to single monolayers. The optical response was evaluated using an independent particle approximation to get the dielectric function's imaginary part, which showed a strong absorption peak in the visible and ultraviolet regions. This feature could be helpful for optoelectronic applications. Nonetheless, the stacking order has a negligible effect on the electronic and optical properties of the BP/MoS2 bilayer. © 2023 Elsevier B.V.
URI
http://hdl.handle.net/11407/8406
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