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Longitudinal field-induced polarized light transmittance of magnetic fluids

โœ Scribed by Shengli Pu; Min Dai; Guoqing Sun


Book ID
104074352
Publisher
Elsevier Science
Year
2010
Tongue
English
Weight
658 KB
Volume
283
Category
Article
ISSN
0030-4018

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โœฆ Synopsis


The complete optical transmittance for a polarized light passing through the magnetic fluids is investigated theoretically and experimentally, when the externally magnetic field is applied along the propagation direction of the incident light. Hybrid effects due to the geometric shadowing and Faraday rotation are considered simultaneously. The Langevin-like functions are employed to describe the magnetic-fielddependent volume concentration of the particle-aggregation (ฯ†โ€ฒ) and the approximate number of magnetic nanoparticles in the particle-aggregation (ฮฒN 0 ). Based on the experiments on the geometric shadowing effect of our magnetic fluid sample, the analytical expression for the total transmitted power with externally magnetic field after an analyzer is derived. Theoretical simulations disclose the influence of certain critical parameters of the magnetic fluids on the field-dependent optical transmittance. For the entire polarized light transmittance, qualitative agreement between the calculations and the experiments is achieved. Applications of magnetic fluids to several polarized devices operating in longitudinal field arrangement are proposed and discussed. The results presented in this work may be useful for designing the corresponding magnetic-fluidbased optical devices.


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Comment on the longitudinal magnetic fie
โœ E. Comay ๐Ÿ“‚ Article ๐Ÿ“… 1996 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 264 KB

Consideration of the radiation from a rotating electric dipole leads to the inference that the existence of the recently suggested B (3) longitudinal magnetic field implies a real electric field which increases indefinitely as time elapses. This conclusion is obtained by integrating the magnetic flu