plasmon polariton
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2022 ◽  
Vol 208 ◽  
pp. 114357
Author(s):  
Vamsi Borra ◽  
Srikanth Itapu ◽  
Victor G. Karpov ◽  
Daniel G. Georgiev

ACS Photonics ◽  
2022 ◽  
Author(s):  
Marianne Aellen ◽  
Aurelio A. Rossinelli ◽  
Robert C. Keitel ◽  
Raphael Brechbühler ◽  
Felipe V. Antolinez ◽  
...  

Nanophotonics ◽  
2022 ◽  
Vol 0 (0) ◽  
Author(s):  
Chaochao Jian ◽  
Xiangchao Ma ◽  
Jianqi Zhang ◽  
Jiali Jiang

Abstract Borophene monolayer with its intrinsic metallic and anisotropic band structures exhibits extraordinary electronic, optical, and transport properties. Especially, the high density of Dirac electrons enables promising applications for building low-loss broadband SPP devices. However, a systematic characterization of the surface plasmon polariton (SPP) properties and hot carriers generated from the inevitable SPP decay in borophene has not been reported so far. Most importantly, the mechanism for SPP losses remains obscurely quantified. In this work, from a fully first-principles perspective, we explicitly evaluate the main loss effects of SPP in borophene, including the Drude resistance, phonon-assisted intraband and direct interband electronic transitions. With this knowledge, we further calculate the frequency- and polarization-dependent SPP response of borophene, and evaluate some typical application-dependent figure of merits of SPP. On the other hand, we evaluate the generation and transport properties of plasmon-driven hot carriers in borophene, involving energy- and momentum-dependent carrier lifetimes and mean free paths, which provide deeper insight toward the transport of hot carriers at the nanoscale. These results indicate that borophene has promising applications in next-generation low-loss optoelectronic devices and photocatalytic reactors.


Nanomaterials ◽  
2022 ◽  
Vol 12 (2) ◽  
pp. 216
Author(s):  
Bo Liu ◽  
Wenjing Yu ◽  
Zhendong Yan ◽  
Pinggen Cai ◽  
Fan Gao ◽  
...  

In this study, we investigate a physical mechanism to improve the light absorption efficiency of graphene monolayer from the universal value of 2.3% to about 30% in the visible and near-infrared wavelength range. The physical mechanism is based on the diffraction coupling of surface plasmon polariton resonances in the periodic array of metal nanoparticles. Through the physical mechanism, the electric fields on the surface of graphene monolayer are considerably enhanced. Therefore, the light absorption efficiency of graphene monolayer is greatly improved. To further confirm the physical mechanism, we use an interaction model of double oscillators to explain the positions of the absorption peaks for different array periods. Furthermore, we discuss in detail the emerging conditions of the diffraction coupling of surface plasmon polariton resonances. The results will be beneficial for the design of graphene-based photoelectric devices.


2022 ◽  
Vol 131 (1) ◽  
pp. 011101
Author(s):  
Heng Li ◽  
Zhen-Ting Huang ◽  
Kuo-Bin Hong ◽  
Min-Wen Yu ◽  
Chia-Hung Wu ◽  
...  

2022 ◽  
Vol 20 (2) ◽  
pp. 023601
Author(s):  
Jingjing Hong ◽  
Xingping Zhou ◽  
Rui Zhuang ◽  
Wei Peng ◽  
Jiawei Liu ◽  
...  

Plasmonics ◽  
2021 ◽  
Author(s):  
Tom G. Mackay ◽  
Muhammad Faryad

AbstractA local minimum in the plot of linear reflectance versus angle of incidence, on its own, is insufficient to identify a surface-plasmon-polariton wave (SPPW). Further checks are required in order to confirm the identity of a SPPW. The wavenumber should be compared with that extracted from the dispersion relation for the corresponding canonical boundary-value problem. Also, for prism-coupled configurations such as the Turbadar–Otto configuration which are based on SPPW-excitation via evanescent waves, the angle of incidence should be greater than the critical angle needed for total internal reflection.


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