Araştırma Makalesi

Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization

Cilt: 14 Sayı: 1 15 Mart 2024
PDF İndir
TR EN

Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization

Öz

In this study, the variation of the dielectric constant, i.e. relative permittivity of highly doped-silica glass used in optical fibers with frequency and temperature under the effect of polarization has been investigated. In this context, simulations of the relationship between the dielectric constant and both frequency and temperature have been carried out in the Matlab environment. According to simulation and theoretical analysis, it has been concluded that the dielectric constant of highly doped-silica glass tends to increase with the increase of ambient temperature. On the other hand, as the frequency of the source increases linearly, the dielectric constant decreases. Hence, the variations of highly doped-silica glass with temperature and frequency have been found to be 2.884 × 10-5 (°K)-1 and – 7.50 × 10-15 (Hz)-1, respectively. Moreover, in response to the change in frequency between 1011 Hz and 1012 Hz, the dielectric constant has taken values between 2.085 and 2.070. Additionally, for dielectric constant variations in 2.070 – 2.085 range, values of the relative change in polarization have been obtained in the range of 9.4695 × 10-12 F/m – 9.6023 × 10-12 F/m.

Anahtar Kelimeler

Dielectric constant, Dielectric polarization, Frequency, Temperature, Highly doped-silica glass, Optical fiber

Kaynakça

  1. Bansal, P.B and Doremus, R.H., (1986). Handbook of glass properties, Academic Press.
  2. De Souza, K.R.C.P., (1999). Fiber optic distributed sensing based on spontaneous Brillouin scattering. PhD Dissertation, University of Southampton, UK.
  3. Fontanella, J., Johnston, R.L., Sigel Jr, G.H., Andeen, C. (1979). The dielectric properties of as-received and gamma irradiated fused silica,” Journal of Non-Crystalline Solids, 31(3), 401–414. https://doi.org/10.1016/0022-3093(79)90153-4.
  4. Gupta, K.M. and Gupta, N., (2015). Dielectric Materials: Properties and Behaviour”, Advanced Electrical and Electronics Materials Processes and Applications”, (Chp. 9, Sec. 9.4, pp. 304–305). Scrivener Publishing, Wiley.
  5. Günday, A. (2018). Computational analysis of the core refractive index dependencies of Brillouin frequency shift and Brillouin power change in Brillouin coherent detection based distributed sensing systems. Optoelectronics and Advanced Materials, 12(9–10). 502–511.
  6. Lie, L., Fang, Y., Xiao, Q., Wu, Y.J., Wang N. and Chen, X.M. (2014). Microwave Dielectric Properties of Fused Silica Prepared by Different Approaches. International Journal of Applied Ceramic Technology, 11, 93–199. https://doi.org/10.1111/j.1744-7402.2012.0 2846.x
  7. Molla’, J., and Ibarra, A. (2004). Radiation effects on the dielectric properties of fused silica. Nuclear Instruments and Methods in Physics Research B, 218, 189–193. https://doi.org/10.1016/j.nimb.2004.01.012
  8. Tan, C. and Arndt, J. (1994). Static dielectric constant and dielectric relaxation of densified SiO2 glass. Journal of Non-Crystalline Solids, 169(1–2), 143–149. https://doi.org/10.1016/0022-3093(94)90233-x
  9. Travasso, F., Bosi, L., Dari, A., Gammaitoni, L., Vocca, H., Marcheson, F. (2009). Low-frequency losses in silica glass at low temperature. Materials Science and Engineering: A, (Vols. 521–522), 268–271. https://doi.org/10.1016/j.msea.2008.09.097
  10. Zhi-Yong, W., Qi, Q., Shuang-Jin, S. (2014). Temperature dependence of the refractive index of optical fibers,” Chinese Physics. B, 23(3), pp. 0342011/5. https://doi.org/10.1088/1674-1056/23/3/034201

Kaynak Göster

APA
Günday, A. (2024). Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization. Karadeniz Fen Bilimleri Dergisi, 14(1), 315-325. https://doi.org/10.31466/kfbd.1408377
AMA
1.Günday A. Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization. KFBD. 2024;14(1):315-325. doi:10.31466/kfbd.1408377
Chicago
Günday, Abdurrahman. 2024. “Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization”. Karadeniz Fen Bilimleri Dergisi 14 (1): 315-25. https://doi.org/10.31466/kfbd.1408377.
EndNote
Günday A (01 Mart 2024) Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization. Karadeniz Fen Bilimleri Dergisi 14 1 315–325.
IEEE
[1]A. Günday, “Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization”, KFBD, c. 14, sy 1, ss. 315–325, Mar. 2024, doi: 10.31466/kfbd.1408377.
ISNAD
Günday, Abdurrahman. “Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization”. Karadeniz Fen Bilimleri Dergisi 14/1 (01 Mart 2024): 315-325. https://doi.org/10.31466/kfbd.1408377.
JAMA
1.Günday A. Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization. KFBD. 2024;14:315–325.
MLA
Günday, Abdurrahman. “Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization”. Karadeniz Fen Bilimleri Dergisi, c. 14, sy 1, Mart 2024, ss. 315-2, doi:10.31466/kfbd.1408377.
Vancouver
1.Abdurrahman Günday. Change of Dielectric Constant of Highly Doped-Silica Glass Used in Optical Fibers with Frequency and Temperature Under the Effect of Polarization. KFBD. 01 Mart 2024;14(1):315-2. doi:10.31466/kfbd.1408377