20
A. Deyasi and A. Sarkar
11. R.M. Gerosa, P.G. Vianna, S.H. Domingues, C.J.S. de Matos, Reduced graphene oxide coated
photonic crystal fiber for all-fiber laser mode locking. in Conference on Lasers and ElectroOptics: OSA Technical Digest (2019), p. STu4L.2
12. U.A. Laudyn, K.A. Rutkowska, R.T. Rutkowski, M.A. Karpierz, T.R. Woli´ nski, J. Wójcik,
Nonlinear effects in photonic crystal fibers filled with nematic liquid crystals. Cent. Eur. J.
Phys. 6(3), 612–618 (2008)
13. J.C. Norman, D. Jung, Y. Wan, J.E. Bowers, Perspective: the future of quantum dot photonic
integrated circuits. APL Photon. 3, 030901 (2018)
14. H. Chen, R. Lou, Y. Chen, L. Chen, J. Lu, Q. Dong, Photonic crystal materials and their
application in biomedicine. Drug Deliv. 24(1), 775–780 (2017)
15. E. Armstronga, C. O’Dwyer, Artificial opal photonic crystals and inverse opal structures—
fundamentals and applications from optics to energy storage. J. Mater. Chem. C 3, 6109–6143
(2015)
16. J. Zhao, X. Li, L. Zhong, G. Chen, Calculation of photonic band-gap of one dimensional
photonic crystal. J. Phys: Conf. Ser. 183(1), 012018 (2009)
17. S. Prakash, G. Sharma, G.C. Yadav, V. Singh, Photonic band gap alteration in LiNbO 3 -SiO 2
based 1D periodic multilayered structure via plate wave. Silicon 11, 1–7 (2018)
18. T. Yuan, T. Feng, Y. Xu, Manipulation of transmission by engineered disorder in onedimensional photonic crystals. Opt. Expr. 27, 6483–6494 (2019)
19. H. Hardhienata, A.I. Aziz, D. Rahmawati, H. Alatas, Transmission characteristics of a 1D
Photonic crystal sandwiched by two graphene layers. J. Phys. Conf. Ser. 1057, 012003 (2018)
20. A. Deyasi, S. Banerji, S. Bose, A. Halder, Analytical computation of band structure of 1D
photonic crystal under normal incidence of electromagnetic wave. in Lecture Notes in Electrical
Engineering: Computational Advancement in Communication Circuits and Systems, Part 6:
Advances in Devices and Circuit (Chap. 36), vol. 335 (2014), pp. 331–338
21. D. Devashish, S.B. Hasan, J.J.W. van der Vegt, W.L. Vos, Reflectivity calculated for a threedimensional silicon photonic band gap crystal with finite support. Phys. Rev. B 95, 155141
(2017)
22. F. Meng, Y. Li, S. Li, H. Lin, B. Jia, X. Huang, Achieving large band gaps in 2D symmetric
and asymmetric photonic crystals. J. Lightw. Technol. 35(9), 1670–1676 (2017)
23. F. Pommereau, M. Attali, R. Brenot, C. Cuisin, E. Derouin, O. Drisse, G.H. Duan, J. Landreau,
L.L. Gouezigou, O.L. Gouezigou, F. Lelarge, F. Poingt, B. Rousseau, Technologies and applications of two-dimensional InP-based photonic crystals. in IEEE International Conference on
Indium Phosphide and Related Materials Conference Proceedings (2006)
24. N.R. Ramanujam, K.S.J. Wilson, P. Mahalakshmi, S. Taya, Analysis of photonic band gap
in photonic crystal with epsilon negative and double negative materials. Optik 183, 203–210
(2019)
25. K.R. Jha, G. Singh, Analysis and design of terahertz microstrip antenna on photonic bandgap
material. J. Comput. Electron. 11(4), 364–373 (2012)
26. J. ˇ
Ctyroký, J.G. Wangüemert-Pérez, P. Kwiecien, I. Richter, J. Litvik, J.H. Schmid, Í. MolinaFernández, A. Ortega-Moñux, M. Dado, P. Cheben, Design of narrowband Bragg spectral filters
in subwavelength grating metamaterial waveguides. Opt. Express 26(1), 179–194 (2018)
27. Z. Jiao, R. Ning, Y. Xu, J. Bao, Tunable angle absorption of hyperbolic metamaterials based
on plasma photonic crystals. Phys. Plasmas 23, 063301 (2016)
28. I. Al-Naib, W. Withayachumnankul, J. Infr. Millim. Terahertz Waves 38(9), 1031–1033 (2017)
29. S. Ghosh, R. Dutta, V. Shaw, A. Deyasi, Improved noise rejection in metamaterial based
defected photonic crystal structure. in Springer Proceedings in Physics: Advances in Optical
Science and Engineering (Chap. 62) (2017), pp. 507–512
30. A. Deyasi, A. Sarkar, Variation of optical bandwidth in defected ternary photonic crystal under
different polarisation conditions. Int. J. Nanopart. 10(1–2), 27–34 (2018)
31. A. Maity, B. Chottopadhyay, U. Banerjee, A. Deyasi, Novel band-pass filter design using
photonic multiple quantum well structure with p-polarized incident wave at 1550 nm. J. Elect.
Dev. 17, 1400–1405 (2013)
A. Deyasi and A. Sarkar
11. R.M. Gerosa, P.G. Vianna, S.H. Domingues, C.J.S. de Matos, Reduced graphene oxide coated
photonic crystal fiber for all-fiber laser mode locking. in Conference on Lasers and ElectroOptics: OSA Technical Digest (2019), p. STu4L.2
12. U.A. Laudyn, K.A. Rutkowska, R.T. Rutkowski, M.A. Karpierz, T.R. Woli´ nski, J. Wójcik,
Nonlinear effects in photonic crystal fibers filled with nematic liquid crystals. Cent. Eur. J.
Phys. 6(3), 612–618 (2008)
13. J.C. Norman, D. Jung, Y. Wan, J.E. Bowers, Perspective: the future of quantum dot photonic
integrated circuits. APL Photon. 3, 030901 (2018)
14. H. Chen, R. Lou, Y. Chen, L. Chen, J. Lu, Q. Dong, Photonic crystal materials and their
application in biomedicine. Drug Deliv. 24(1), 775–780 (2017)
15. E. Armstronga, C. O’Dwyer, Artificial opal photonic crystals and inverse opal structures—
fundamentals and applications from optics to energy storage. J. Mater. Chem. C 3, 6109–6143
(2015)
16. J. Zhao, X. Li, L. Zhong, G. Chen, Calculation of photonic band-gap of one dimensional
photonic crystal. J. Phys: Conf. Ser. 183(1), 012018 (2009)
17. S. Prakash, G. Sharma, G.C. Yadav, V. Singh, Photonic band gap alteration in LiNbO 3 -SiO 2
based 1D periodic multilayered structure via plate wave. Silicon 11, 1–7 (2018)
18. T. Yuan, T. Feng, Y. Xu, Manipulation of transmission by engineered disorder in onedimensional photonic crystals. Opt. Expr. 27, 6483–6494 (2019)
19. H. Hardhienata, A.I. Aziz, D. Rahmawati, H. Alatas, Transmission characteristics of a 1D
Photonic crystal sandwiched by two graphene layers. J. Phys. Conf. Ser. 1057, 012003 (2018)
20. A. Deyasi, S. Banerji, S. Bose, A. Halder, Analytical computation of band structure of 1D
photonic crystal under normal incidence of electromagnetic wave. in Lecture Notes in Electrical
Engineering: Computational Advancement in Communication Circuits and Systems, Part 6:
Advances in Devices and Circuit (Chap. 36), vol. 335 (2014), pp. 331–338
21. D. Devashish, S.B. Hasan, J.J.W. van der Vegt, W.L. Vos, Reflectivity calculated for a threedimensional silicon photonic band gap crystal with finite support. Phys. Rev. B 95, 155141
(2017)
22. F. Meng, Y. Li, S. Li, H. Lin, B. Jia, X. Huang, Achieving large band gaps in 2D symmetric
and asymmetric photonic crystals. J. Lightw. Technol. 35(9), 1670–1676 (2017)
23. F. Pommereau, M. Attali, R. Brenot, C. Cuisin, E. Derouin, O. Drisse, G.H. Duan, J. Landreau,
L.L. Gouezigou, O.L. Gouezigou, F. Lelarge, F. Poingt, B. Rousseau, Technologies and applications of two-dimensional InP-based photonic crystals. in IEEE International Conference on
Indium Phosphide and Related Materials Conference Proceedings (2006)
24. N.R. Ramanujam, K.S.J. Wilson, P. Mahalakshmi, S. Taya, Analysis of photonic band gap
in photonic crystal with epsilon negative and double negative materials. Optik 183, 203–210
(2019)
25. K.R. Jha, G. Singh, Analysis and design of terahertz microstrip antenna on photonic bandgap
material. J. Comput. Electron. 11(4), 364–373 (2012)
26. J. ˇ
Ctyroký, J.G. Wangüemert-Pérez, P. Kwiecien, I. Richter, J. Litvik, J.H. Schmid, Í. MolinaFernández, A. Ortega-Moñux, M. Dado, P. Cheben, Design of narrowband Bragg spectral filters
in subwavelength grating metamaterial waveguides. Opt. Express 26(1), 179–194 (2018)
27. Z. Jiao, R. Ning, Y. Xu, J. Bao, Tunable angle absorption of hyperbolic metamaterials based
on plasma photonic crystals. Phys. Plasmas 23, 063301 (2016)
28. I. Al-Naib, W. Withayachumnankul, J. Infr. Millim. Terahertz Waves 38(9), 1031–1033 (2017)
29. S. Ghosh, R. Dutta, V. Shaw, A. Deyasi, Improved noise rejection in metamaterial based
defected photonic crystal structure. in Springer Proceedings in Physics: Advances in Optical
Science and Engineering (Chap. 62) (2017), pp. 507–512
30. A. Deyasi, A. Sarkar, Variation of optical bandwidth in defected ternary photonic crystal under
different polarisation conditions. Int. J. Nanopart. 10(1–2), 27–34 (2018)
31. A. Maity, B. Chottopadhyay, U. Banerjee, A. Deyasi, Novel band-pass filter design using
photonic multiple quantum well structure with p-polarized incident wave at 1550 nm. J. Elect.
Dev. 17, 1400–1405 (2013)
