Title :
Thermally Modulated Slow Light in Magnetic Fluid Photonic Crystal
Author :
Yu Ying ; Yong Zhao ; Ri-Qing Lv ; Jin Li
Author_Institution :
Coll. of Inf. Sci. & Eng., Northeastern Univ., Shenyang, China
Abstract :
Magnetic fluid is a new type of optical functional material. When it is made as a film, a hexagonal order structure can be formed under an external magnetic field. This novel magnetic-field dependent structure may be regarded as a kind of magnetic fluid photonic crystal. The slow light property in the magnetic fluid photonic crystal was studied in this letter. It was pointed that the geometry parameters of the structure could be tuned by changing the applied temperature. In addition, photonic bandgap and group velocity as a function of temperature were simulated. The results showed that the upper and lower normalized frequency of the photonic bandgap would both shift to higher frequencies, and the maximal group velocity <;0.25 c was obtained, which could be thermally tuned in a large range. The working frequency corresponding to the maximal group velocity would change from 0.2063 to 0.4312 (a/λ) when the external temperature was increased from 18 °C to 48 °C. These results fully proved that the magnetic fluid photonic crystal, as a type of thermally modulated photonic crystal, could be used in the field of optical sensors. It also provided a new idea for generating slow light in colloid photonic crystal waveguide.
Keywords :
colloidal crystals; magnetic fluids; magneto-optical devices; magneto-optical effects; optical films; optical modulation; optical sensors; optical waveguides; photonic band gap; photonic crystals; slow light; thermo-optical effects; applied temperature; colloid photonic crystal waveguide; external magnetic field; external temperature; geometry parameters; hexagonal order structure; lower normalized frequency; magnetic fluid photonic crystal; magnetic-field dependent structure; maximal group velocity; optical film; optical functional material; optical sensors; photonic bandgap; slow light property; temperature 18 degC to 48 degC; thermally modulated photonic crystal; thermally modulated slow light; upper normalized frequency; working frequency; Indexes; Magnetic liquids; Magnetic separation; Optical waveguides; Photonic band gap; Slow light; Magnetic fluid photonic crystal; group velocity; photonic bandgap; temperature;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2015.2398897