| Literature DB >> 27999254 |
Delong Su1, Shengli Pu2,3, Lianmin Mao4, Zhaofang Wang5, Kai Qian6.
Abstract
A kind of photonic crystal magnetic field sensor is proposed and investigated numerically. The shoulder-coupled resonant cavity is introduced in the photonic crystal, which is infiltrated with magnetic fluid. Through monitoring the shift of resonant wavelength, the magnetic field sensing is realized. According to the designed infiltration schemes, both the magnetic field sensitivity and full width at half maximum increase with the number of infiltrated air holes. The figure of merit of the structure is defined to evaluate the sensing performance comprehensively. The best structure corresponding to the optimal infiltration scheme with eight air holes infiltrated with magnetic fluid is obtained.Entities:
Keywords: magnetic field sensor; magnetic fluid; photonic crystal; resonant cavity
Year: 2016 PMID: 27999254 PMCID: PMC5191137 DOI: 10.3390/s16122157
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Schematic of the sensor configuration.
Figure 2(a) Resonant wavelength and peak transmittance as functions of the radius of the center hole when ; (b) the radius of the terminal hole when ; (c) the transmission of the TE-like fundamental mode for ; and .
Figure 3Steady-state electric field distribution for incident wavelengths of 1530.43, 1525.43 and 1520.43 nm. (b) is the cavity area corresponding to (a).
Figure 4Various infiltration schemes for the structues with a shoulder-coupled cavity infiltrated with magnetic fluid (MF).
Figure 5(a) Output transmission spectra at different local magnetic field factors for the center air hole infiltrated with MF; (b) resonant wavelength shift with local magnetic field factor for different MF-infiltrated structures.
Figure 6Magnetic field sensitiviy S and FWHM as functions of the number of infiltrated air holes.
Figure 7Figure of merit (FOM) of the infiltrated structure as a function of the number of infiltraed air holes.