scholarly journals Surface plasmon polariton laser based on a metallic trench Fabry-Perot resonator

2017 ◽  
Vol 3 (10) ◽  
pp. e1700909 ◽  
Author(s):  
Wenqi Zhu ◽  
Ting Xu ◽  
Haozhu Wang ◽  
Cheng Zhang ◽  
Parag B. Deotare ◽  
...  
2014 ◽  
Vol 39 (8) ◽  
pp. 2378 ◽  
Author(s):  
Jian-Juan Jiang ◽  
Yu-Bo Xie ◽  
Zheng-Yang Liu ◽  
Xia-Mei Tang ◽  
Xue-Jin Zhang ◽  
...  

Photonics ◽  
2017 ◽  
Vol 4 (4) ◽  
pp. 35 ◽  
Author(s):  
David George ◽  
Murthada Adewole ◽  
Safaa Hassan ◽  
David Lowell ◽  
Jingbiao Cui ◽  
...  

CLEO: 2014 ◽  
2014 ◽  
Author(s):  
Jian-Juan Jiang ◽  
Yu-Bo Xie ◽  
Zheng-Yang Liu ◽  
Xue-Jin Zhang ◽  
Yong-Yuan Zhu

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

2020 ◽  
Vol 14 (1) ◽  
pp. 016001
Author(s):  
Hongxin Zhao ◽  
Qipeng Wang ◽  
Leilei Liu ◽  
Xiaoxing Yin

Photonics ◽  
2021 ◽  
Vol 8 (4) ◽  
pp. 114
Author(s):  
Steve Kamau ◽  
Safaa Hassan ◽  
Khadijah Alnasser ◽  
Hualiang Zhang ◽  
Jingbiao Cui ◽  
...  

It is challenging to realize the complete broadband absorption of near-infrared in thin optical devices. In this paper, we studied high light absorption in two devices: a stack of Au-pattern/insulator/Au-film and a stack of Au-pattern/weakly-absorbing-material/Au-film where the Au-pattern was structured in graded photonic super-crystal. We observed multiple-band absorption, including one near 1500 nm, in a stack of Au-pattern/spacer/Au-film. The multiple-band absorption is due to the gap surface plasmon polariton when the spacer thickness is less than 30 nm. Broadband absorption appears in the near-infrared when the insulator spacer is replaced by a weakly absorbing material. E-field intensity was simulated and confirmed the formation of gap surface plasmon polaritons and their coupling with Fabry–Pérot resonance.


Nanophotonics ◽  
2020 ◽  
Vol 9 (12) ◽  
pp. 3965-3975 ◽  
Author(s):  
Dmitry Yu. Fedyanin ◽  
Alexey V. Krasavin ◽  
Aleksey V. Arsenin ◽  
Anatoly V. Zayats

AbstractPlasmonics offers a unique opportunity to break the diffraction limit of light and bring photonic devices to the nanoscale. As the most prominent example, an integrated nanolaser is a key to truly nanoscale photonic circuits required for optical communication, sensing applications and high-density data storage. Here, we develop a concept of an electrically driven subwavelength surface-plasmon-polariton nanolaser, which is based on a novel amplification scheme, with all linear dimensions smaller than the operational free-space wavelength λ and a mode volume of under λ3/30. The proposed pumping approach is based on a double-heterostructure tunneling Schottky barrier diode and gives the possibility to reduce the physical size of the device and ensure in-plane emission so that the nanolaser output can be naturally coupled to a plasmonic or nanophotonic waveguide circuitry. With the high energy efficiency (8% at 300 K and 37% at 150 K), the output power of up to 100 μW and the ability to operate at room temperature, the proposed surface plasmon polariton nanolaser opens up new avenues in diverse application areas, ranging from ultrawideband optical communication on a chip to low-power nonlinear photonics, coherent nanospectroscopy, and single-molecule biosensing.


Nanophotonics ◽  
2020 ◽  
Vol 10 (2) ◽  
pp. 975-982
Author(s):  
Huanhuan Su ◽  
Shan Wu ◽  
Yuhan Yang ◽  
Qing Leng ◽  
Lei Huang ◽  
...  

AbstractPlasmonic nanostructures have garnered tremendous interest in enhanced light–matter interaction because of their unique capability of extreme field confinement in nanoscale, especially beneficial for boosting the photoluminescence (PL) signals of weak light–matter interaction materials such as transition metal dichalcogenides atomic crystals. Here we report the surface plasmon polariton (SPP)-assisted PL enhancement of MoS2 monolayer via a suspended periodic metallic (SPM) structure. Without involving metallic nanoparticle–based plasmonic geometries, the SPM structure can enable more than two orders of magnitude PL enhancement. Systematic analysis unravels the underlying physics of the pronounced enhancement to two primary plasmonic effects: concentrated local field of SPP enabled excitation rate increment (45.2) as well as the quantum yield amplification (5.4 times) by the SPM nanostructure, overwhelming most of the nanoparticle-based geometries reported thus far. Our results provide a powerful way to boost two-dimensional exciton emission by plasmonic effects which may shed light on the on-chip photonic integration of 2D materials.


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