Multi-channel photonic bandgap engineering in hyperbolic graded index materials embedded one-dimensional photonic crystals

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dc.contributor.author Singh, B. K.
dc.contributor.author Bambole, V.
dc.contributor.author Rastogi, V.
dc.contributor.author Pandey, P.C.
dc.date.accessioned 2020-12-07T10:38:14Z
dc.date.available 2020-12-07T10:38:14Z
dc.date.issued 2020-09
dc.identifier.issn 00303992
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/1081
dc.description.abstract Engineering of multi-channel photonic band gap sensing consequences has been demonstrated in hyperbolic graded index materials embedded one-dimensional (1-D) photonic crystal (PC) in the frequency 150–850 THz region. The multi-channel photonic band gap sensing properties have been investigated by taking into account the reflection and photonic band gap (PBG) spectra of the proposed PC structures. For quarter-wave stacking, we obtain single optical reflection band for band region 646.8 – 434.3 THz with the constituted normal layer refractive index 1.5. Band regions and bandwidths of the single PBG channel can be modulated by changing the refractive index of the constituted normal layer and grading parameter of the hyperbolic graded layer. The number of photonic bands increases with increasing the layer thickness of the GPC structures and leads to work as multi-channel PBG sensors. The operation frequency of the multi-channel PBG sensors can also be tuned by changing the constituted normal layer and grading parameter of the hyperbolic graded layer. These properties lead to design the tunable multi-channel optical sensors/filters engineering. Moreover, the demonstration of the reflection phase shift, group velocity, group delay, and electric field distributions shows the effect of hyperbolic graded index materials on the propagation of light in 1-D PCs. With the engineering of tunable PBGs and structure controllability, hyperbolic graded index materials embedded 1-D PCs provide a promising way to fabricate tunable optical reflectors and multi-channel optical sensors/filters for future optical devices. © 2020 Elsevier Ltd en_US
dc.description.sponsorship University Grants Commission en_US
dc.language.iso en_US en_US
dc.publisher Elsevier Ltd en_US
dc.relation.ispartofseries Optics and Laser Technology;Vol. 129
dc.subject Graded photonic crystals en_US
dc.subject Photonic band gap en_US
dc.subject Reflectors en_US
dc.subject Muti-channel PBG sensors en_US
dc.title Multi-channel photonic bandgap engineering in hyperbolic graded index materials embedded one-dimensional photonic crystals en_US
dc.type Article en_US


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