Demonstration of High Quality Factor Aluminum Nitride on Sapphire Microring Resonators at Near Infrared and Green Wavelengths

Author(s):  
Yi Sun ◽  
Walter Shin ◽  
Majid Aalizadeh ◽  
Ping Wang ◽  
David Arto Laleyan ◽  
...  
Author(s):  
Zeru Wu ◽  
Zengkai Shao ◽  
Zihan Xu ◽  
Yanfeng Zhang ◽  
Lin Liu ◽  
...  

2019 ◽  
Vol 37 (3) ◽  
pp. 868-874 ◽  
Author(s):  
Yi Zheng ◽  
Minhao Pu ◽  
Hitesh Kumar Sahoo ◽  
Elizaveta Semenova ◽  
Kresten Yvind

2019 ◽  
Vol 27 (9) ◽  
pp. 13053 ◽  
Author(s):  
Yi Zheng ◽  
Minhao Pu ◽  
Ailun Yi ◽  
Bingdong Chang ◽  
Tiangui You ◽  
...  

Nanomaterials ◽  
2020 ◽  
Vol 10 (1) ◽  
pp. 95 ◽  
Author(s):  
Chunlian Cen ◽  
Zeqiang Chen ◽  
Danyang Xu ◽  
Liying Jiang ◽  
Xifang Chen ◽  
...  

By means of critical coupling and impedance matching theory, we have numerically simulated the perfect absorption of monolayer graphene. Through the critical coupling effect and impedance matching, we studied a perfect single-band absorption of the monolayer graphene and obtained high quality factor (Q-factor = 664.2) absorption spectrum which has an absorbance close to 100% in the near infrared region. The position of the absorption spectrum can be adjusted by changing the ratio between the radii of the elliptic cylinder air hole and the structural period. The sensitivity of the absorber can be achieved S = 342.7 nm/RIU (RIU is the per refractive index unit) and FOM = 199.2 (FOM is the figure of merit), which has great potential for development on biosensors. We believe that our research will have good application prospects in graphene photonic devices and optoelectronic devices.


Author(s):  
Michiel de Goede ◽  
Sonia M. García-Blanco ◽  
Meindert Dijkstra ◽  
Raquel Obregón Núñez ◽  
Elena Martínez

2014 ◽  
Vol 134 (2) ◽  
pp. 26-31 ◽  
Author(s):  
Nguyen Van Toan ◽  
Masaya Toda ◽  
Yusuke Kawai ◽  
Takahito Ono

2020 ◽  
Vol 9 (1) ◽  
Author(s):  
Andreas Ø. Svela ◽  
Jonathan M. Silver ◽  
Leonardo Del Bino ◽  
Shuangyou Zhang ◽  
Michael T. M. Woodley ◽  
...  

AbstractAs light propagates along a waveguide, a fraction of the field can be reflected by Rayleigh scatterers. In high-quality-factor whispering-gallery-mode microresonators, this intrinsic backscattering is primarily caused by either surface or bulk material imperfections. For several types of microresonator-based experiments and applications, minimal backscattering in the cavity is of critical importance, and thus, the ability to suppress backscattering is essential. We demonstrate that the introduction of an additional scatterer into the near field of a high-quality-factor microresonator can coherently suppress the amount of backscattering in the microresonator by more than 30 dB. The method relies on controlling the scatterer position such that the intrinsic and scatterer-induced backpropagating fields destructively interfere. This technique is useful in microresonator applications where backscattering is currently limiting the performance of devices, such as ring-laser gyroscopes and dual frequency combs, which both suffer from injection locking. Moreover, these findings are of interest for integrated photonic circuits in which back reflections could negatively impact the stability of laser sources or other components.


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