Ultra-small on-chip polarization splitters in hybrid plasmonic waveguides

Author(s):  
Jianjun Chen ◽  
Chengwei Sun ◽  
Qihuang Gong
Nanophotonics ◽  
2020 ◽  
Vol 9 (6) ◽  
pp. 1529-1538
Author(s):  
Mingyang Su ◽  
Bo Yang ◽  
Junmin Liu ◽  
Huapeng Ye ◽  
Xinxing Zhou ◽  
...  

AbstractGraphene, a two-dimensional nanomaterial, possess unique photoelectric properties that have potential application in designing optoelectronic devices. The tunable optical absorption is one of the most exciting properties that can be used to improve the performance of silicon modulators. However, the weak light–matter interaction caused by the size mismatch between the optical mode fields and graphene makes the graphene-on-silicon modulator (GOSM) has large footprint and high energy consumption, limiting the enhancement of modulation efficiency. Here, we propose a broadband GOSM with orthogonal hybrid plasmonic waveguides (HPWs) at near-infrared wavelengths. The orthogonal HPWs are designed to compress the interaction region of optical fields and enhance the light-graphene interaction. The results show that the GOSM has a modulation depth of 26.20 dB/μm, a footprint of 0.33 μm2, a 3 dB modulation bandwidth of 462.77 GHz, and energy consumption of 2.82 fJ/bit at 1.55 μm. Even working at a broad wavelength band ranging from 1.3 to 2 μm, the GOSM also has a modulation depth of over 8.58 dB/μm and energy consumption of below 4.97 fJ/bit. It is anticipated that with the excellent modulation performance, this GOSM may have great potential in broadband integrated modulators, on-chip optical communications and interconnects, etc.


Plasmonics ◽  
2015 ◽  
Vol 11 (3) ◽  
pp. 763-769 ◽  
Author(s):  
John Colanduoni ◽  
Daniel Nikolov ◽  
Huizhong Xu

Author(s):  
Tim Pickering ◽  
Joachim M. Hamm ◽  
A. Freddie Page ◽  
Sebastian Wuestner ◽  
Ortwin Hess

Nanophotonics ◽  
2017 ◽  
Vol 6 (5) ◽  
pp. 1121-1131 ◽  
Author(s):  
Hao Wu ◽  
Ke Ma ◽  
Yaocheng Shi ◽  
Lech Wosinski ◽  
Daoxin Dai

AbstractWe propose and demonstrate an ultracompact on-chip photothermal power monitor based on a silicon hybrid plasmonic waveguide (HPWG), which consists of a metal strip, a silicon core, and a silicon oxide (SiO2) insulator layer between them. When light injected to an HPWG is absorbed by the metal strip, the temperature increases and the resistance of the metal strip changes accordingly due to the photothermal and thermal resistance effects of the metal. Therefore, the optical power variation can be monitored by measuring the resistance of the metal strip on the HPWG. To obtain the electrical signal for the resistance measurement conveniently, a Wheatstone bridge circuit is monolithically integrated with the HPWG on the same chip. As the HPWG has nanoscale light confinement, the present power monitor is as short as ~3 μm, which is the smallest photothermal power monitor reported until now. The compactness helps to improve the thermal efficiency and the response speed. For the present power monitor fabricated with simple fabrication processes, the measured responsivity is as high as about 17.7 mV/mW at a bias voltage of 2 V and the power dynamic range is as large as 35 dB.


2018 ◽  
Vol 30 (21) ◽  
pp. 1870148 ◽  
Author(s):  
Kexiu Rong ◽  
Fengyuan Gan ◽  
Kebin Shi ◽  
Saisai Chu ◽  
Jianjun Chen

Author(s):  
S. Palomba ◽  
F. J. Diaz ◽  
G. Li ◽  
C. Martijn de Sterke ◽  
B. T. Kuhlmey

Sign in / Sign up

Export Citation Format

Share Document