Dual-wavelength transmission system using double micro-resonator system for EMI healthcare applications

被引:0
作者
I. S. Amiri
M. Bunruangses
K. Chaiwong
R. Udaiyakumar
R. Maheswar
M. N. Hindia
K. B. Dimyati
P. Yupapin
机构
[1] Ton Duc Thang University,Computational Optics Research Group, Advanced Institute of Materials Science
[2] Ton Duc Thang University,Faculty of Applied Sciences
[3] Rajamangala University of Technology Phranakorn,Faculty of Industrial Education
[4] Leoi Rajabhat University,Faculty of Industrial Technology
[5] Sri Krishna College of Technology,Department of Electronics and Communication
[6] University of Malaya,Department of Electrical Engineering, Faculty of Engineering
[7] Ton Duc Thang University,Faculty of Electrical and Electronics Engineering
来源
Microsystem Technologies | 2019年 / 25卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
To meet the 5G requirements for higher bandwidth, the focus has been shifted to millimeter waves paving the way to radio over fiber (RoF) in order to minimize radio losses. Dual wavelength transmission within RoF for electromagnetic immunity interference (EMI) can be utilized within local area network and long-haul transmission. Health care services will also be able to utilize the technology to transmit health-related data from thousands of patients to the specific destination by connecting to the long-haul fiber optic cable connection. To make dual-wavelength transmission stable and reliable, the formation of the two-wavelength light source is proposed in this paper by means of the double coupled micro-ring resonators. The proposed RoF system will be able to transmit EMI signals of patients over 300 km of optical fiber link and 3 m wireless link without the need for any intermediate signal amplifying device. All the patient’s data will be available to any doctor in any hospital securely by integrating with currently available wireless and the internet of things systems.
引用
收藏
页码:1185 / 1193
页数:8
相关论文
共 182 条
[31]  
Yupapin P(2015)All optical ultra-wideband signal generation and transmission using mode-locked laser incorporated with add-drop microring resonator Laser Phys Lett 419 59-undefined
[32]  
Amiri I(2017)A review of Internet of Things for smart home: challenges and solutions J Clean Prod 12 2404-undefined
[33]  
Soltanmohammadi S(2018)Proposal and performance analysis on the PDM microwave photonic link for the mm-wave signal with hybrid QAM-MPPM-RZ modulation Opt Commun 2 B54-undefined
[34]  
Shahidinejad A(2004)Ultrahigh-resolution, high-speed, Fourier domain optical coherence tomography and methods for dispersion compensation Opt Express 7 12986-undefined
[35]  
Ali J(2014)Microwave photonics: radio-over-fiber links, systems, and applications Photonics Res 36 2312-undefined
[36]  
Amiri I(2017)Digital nonlinearity compensation in high-capacity optical communication systems considering signal spectral broadening effect Sci Rep 25 472-undefined
[37]  
Alavi S(2018)Microcomb-based true-time-delay network for microwave beamforming with arbitrary beam pattern control J Lightwave Technol undefined undefined-undefined
[38]  
Fisal N(2017)Real-time phase delay compensation of PGC demodulation in sinusoidal phase-modulation interferometer for nanometer displacement measurement Opt Express undefined undefined-undefined
[39]  
Supa’at A(undefined)undefined undefined undefined undefined-undefined
[40]  
Ahmad H(undefined)undefined undefined undefined undefined-undefined