Experimental and numerical characterization of a mid-infrared plasmonic perfect absorber for dual-band enhanced vibrational spectroscopy

2017 ◽  
Vol 73 ◽  
pp. 213-222 ◽  
Author(s):  
Erdem Aslan ◽  
Ekin Aslan ◽  
Mustafa Turkmen ◽  
Omer Galip Saracoglu
2020 ◽  
Vol 9 (1) ◽  
pp. 27
Author(s):  
Zhao Chen ◽  
Yudong Weng ◽  
Junku Liu ◽  
Nan Guo ◽  
Yaolun Yu ◽  
...  

2019 ◽  
Vol 14 (1) ◽  
Author(s):  
Xin Luo ◽  
Zi-Qiang Cheng ◽  
Xiang Zhai ◽  
Zhi-Min Liu ◽  
Si-Qi Li ◽  
...  

Abstract A suspended monolayer graphene has only about 2.3% absorption rate in visible and infrared band, which limits its optoelectronic applications. To significantly increase graphene’s absorption efficiency, a tunable dual-band and polarization-insensitive coherent perfect absorber (CPA) is proposed in the mid-infrared regime, which contains the silicon array coupled in double-layers graphene waveguide. Based on the FDTD methods, dual-band perfect absorption peaks are achieved in 9611 nm and 9924 nm, respectively. Moreover, due to its center symmetric feature, the proposed absorber also demonstrates polarization-insensitive. Meanwhile, the coherent absorption peaks can be all-optically modulated by altering the relative phase between two reverse incident lights. Furthermore, by manipulating the Fermi energies of two graphene layers, two coherent absorption peaks can move over a wide spectrum range, and our designed CPA can also be changed from dual-band CPA to narrowband CPA. Thus, our results can find some potential applications in the field of developing nanophotonic devices with excellent performance working at the mid-infrared regime.


2015 ◽  
Vol 5 (1) ◽  
Author(s):  
Yuping Zhang ◽  
Tongtong Li ◽  
Qi Chen ◽  
Huiyun Zhang ◽  
John F. O’Hara ◽  
...  

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