• Title/Summary/Keyword: Photonic crystal waveguide

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A Study on the Analysis of Electromagnetic Characteristics and Design of a Cylindrical Photonic Crystal Waveguide with a Low-Index Core (중심-동공을 갖는 원통형태 광결정 도파로의 전자장 특성 분석 및 설계 연구)

  • Kim, Jeong I.
    • Journal of the Korea Convergence Society
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    • v.12 no.2
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    • pp.29-34
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    • 2021
  • In this paper, a cylindrical photonic crystal waveguide with a low-index core is first proposed. The core can be filled with air, liquid, or arbitrary dielectric materials. Exact analyses for the electromagnetic field characteristics of guided modes, by using appropriate Bessel functions and applying the boundary conditions, are performed to find out the guiding characteristics of the proposed waveguide. For verification and usage in design and manufacturing process, the computer-calculation of the waveguide transmission characteristics is also performed by applying the rigorous full-vectorial finite difference method. Providing variations of the effective area for the fundamental mode of the designed waveguide with different numbers of cladding layers, ranging from 2.6056 ㎛2 to 5.9673 ㎛2 over the operation wavelength, generally as the core refractive index n1 is higher, the mode area becomes smaller and the result leads to more optimistic effect for nonlinear device applications.

Small group velocity in two dimensional photonic crystal line defect (2 차원 광결정 선결함의 낮은 군속도)

  • Lee, Myotmg-Rae;Hong, Chin-Soo;Kim, Kyoung-Rae;Shin, Won-Chin
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.04a
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    • pp.49-51
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    • 2009
  • Photonic crystal is a dielectric materials or a set of different dielectric materials with periodic structure of refractive index. Line defect obtained by leaving out a row of rod along the $\Gamma$-X direction. We showed the change of group velocity in waveguide mode and found a small group velocity. Characteristic of the small group velocity described by electric field distribution. As the phase variation, small group velocity confirmed from positive to negative.

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Performance Enhancement of Cavity Assisted Photonic Crystal De-Multiplexerin Slow Light Regime

  • Vadjed-Samiei, Mohammad-Hashem;Aghababaeian, Hassan
    • Journal of the Optical Society of Korea
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    • v.20 no.3
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    • pp.401-406
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    • 2016
  • This study first proposes a new version of a photonic crystal based de-multiplexer operating under the slow light regime, secondly analyses the structure numerically to demonstrate de-multiplexing operation and finally studies the impact of light speed on the performance of the proposed structure. The operation wavelength is 1.55 µm. The study indicates that, by adjusting the speed of light, around 0.1C, in the main waveguide and in the output channels’ waveguides, an enhancement in the performance of the de-multiplexer will be gained.

Two-Dimensional Photonic Bandgap Nanolasers (2차원 광밴드갭 나노레이저)

  • Lee, Y. H.;Hwang, J-K;H.Y. Ryu;Park, H. K.;D. J. Shin
    • Proceedings of the Optical Society of Korea Conference
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    • 2001.02a
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    • pp.2-3
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    • 2001
  • Characteristics of two-dimensional slab photonic crystal lasers will be summarized. Room temperature c.w operation is demonstrated at 1.6 $\mu\textrm{m}$ by using InGaAsP slab-waveguide triangular photonic crystal on top of wet-oxidized aluminum oxide. Recently, 2-D PBG structures have attracted a great deal of attention due to their simplicity in fabrication and theoretical study as compared to the three-dimensional counterparts [1]. Air-guided 2-D slab PBG lasers were reported by Caltech group (2). However, this air-slab structure is mechanically fragile and thermally unforgiving. Therefore, a new structure that can remove this thermal limitation is dearly sought after for 2-D PBG laser to have practical meaning. In this talk, we report room-temperature continuous operation of 2-D photonic bandgap lasers that are thermally and mechanically stable.(omitted)

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A Study on the Dip-pen Nanolithography Process and Fabrication of Optical Waveguide for the Application of Biosensor

  • Kim, Jun-Hyong;Yang, Hoe-Young;Yu, Chong-Hee;Lee, Hyun-Yong
    • Transactions on Electrical and Electronic Materials
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    • v.9 no.4
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    • pp.163-168
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    • 2008
  • Photonic crystal structures have been received considerable attention due to their high optical sensitivity. One of the techniques to construct their structure is the dip-pen lithography (DPN) process, which requires a nano-scale resolution and high reliability. In this paper, we propose a two dimensional photonic crystal array to improve the sensitivity of optical biosensor and DPN process to realize it. As a result of DPN patterning test, we have observed that the diffusion coefficient of the mercaptohexadecanoic acid (MHA) molecule ink in octanol is much larger than that in acetonitrile. In addition, we have designed and fabricated optical waveguides based on the mach-zehnder interferometer (MZI) for application to biosensors. The waveguides were optimized at a wavelength of 1550 nm and fabricated according to the design rule of 0.45 delta%, which is the difference of refractive index between the core and clad. The MZI optical waveguides were measured of the optical characteristics for the application of biosensor.

Analysis of optical splitters in photonic crystals (광자 크리스탈로 구성된 광 분배기의 특성 연구)

  • 윤지수;정교방
    • Korean Journal of Optics and Photonics
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    • v.13 no.1
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    • pp.27-31
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    • 2002
  • We design a 1$\times$4 optical splitter made of photonic crystal waveguides and analyze the properties of the optical splitter using the finite-difference time-domain method with perfectly-matched-layer absorbing boundaries. The photonic crystal is constructed from cylindrical rods in air on a square lattice. Our simulation results show that there are different transmission properties for four bend geometries and different incident-wave frequencies. The sum of the power transmission of the splitted light is over 93 percent at a certain geometry and frequency, and the incident power splits in the four arms with almost the same ratio.

나노임프린트 리소그래피를 이용한 SOI 광결정 슈퍼프리즘 제작

  • Choe, Chun-Gi;Han, Yeong-Tak;O, Sang-Sun
    • Proceedings of the Optical Society of Korea Conference
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    • 2007.07a
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    • pp.319-320
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    • 2007
  • We report on the fabrication of two-dimensional Silicon On Insulator (SOI) photonic crystal (PhC) superprism. To optimize the design of 2-D SOI PhC superprism, the photonic band structures (TE-polarization) for triangular lattices and the dispersion surfaces were calculated and analyzed by the plane wave expansion method. Dense 2-D SOI PhC superprism nanostructures with taper input and output waveguide microstructures were successfully fabricated by nanoimprint lithography, followed by inductively coupled plasma (ICP) etching.

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Application of Graphene in Photonic Integrated Circuits

  • Kim, Jin-Tae;Choe, Seong-Yul;Choe, Chun-Gi
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.196-196
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    • 2012
  • Graphene, two-dimensional one-atom-thick planar sheet of carbon atoms densely packed in a honeycomb crystal lattice, has grabbled appreciable attention due to its extraordinary mechanical, thermal, electrical, and optical properties. Based on the graphene's high carrier mobility, high frequency graphene field effect transistors have been developed. Graphene is useful for photonic components as well as for the applications in electronic devices. Graphene's unique optical properties allowed us to develop ultra wide-bandwidth optical modulator, photo-detector, and broadband polarizer. Graphene can support SPP-like surface wave because it is considered as a two-dimensional metal-like systems. The SPPs are associated with the coupling between collective oscillation of free electrons in the metal and electromagnetic waves. The charged free carriers in the graphene contribute to support the surface waves at the graphene-dielectric interface by coupling to the electromagnetic wave. In addition, graphene can control the surface waves because its charge carrier density is tunable by means of a chemical doping method, varying the Fermi level by applying gate bias voltage, and/or applying magnetic field. As an extended application of graphene in photonics, we investigated the characteristics of the graphene-based plasmonic waveguide for optical signal transmission. The graphene strips embedded in a dielectric are served as a high-frequency optical signal guiding medium. The TM polarization wave is transmitted 6 mm-long graphene waveguide with the averaged extinction ratio of 19 dB at the telecom wavelength of $1.31{\mu}m$. 2.5 Gbps data transmission was successfully accomplished with the graphene waveguide. Based on these experimental results, we concluded that the graphene-based plasmonic waveguide can be exploited further for development of next-generation integrated photonic circuits on a chip.

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Hybrid Square-Lattice Photonic Crystal Fiber with Broadband Single-Mode Operation, High Birefringence, and Normal Dispersion

  • Kim, Soeun;Lee, Yong Soo;Lee, Chung Ghiu;Jung, Yongmin;Oh, Kyunghwan
    • Journal of the Optical Society of Korea
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    • v.19 no.5
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    • pp.449-455
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    • 2015
  • In this study we propose a new photonic crystal fiber (PCF) design that simultaneously offers broadband single-mode operation, high birefringence, and large normal dispersion in the optical-communication wavelength regime. The waveguide is based on a hybrid square-lattice PCF (HS-PCF) that has circular air holes of two different diameters alternating in the cladding, plus a pure silica defect at the center. The optical properties of the guided modes are analyzed numerically by the finite-element method (FEM) with a perfectly matched layer as the boundary condition. The optimized HS-PCF has a dispersion coefficient of $-601.67\;ps\;nm^{-1}\;km^{-1}$ and a high birefringence of $1.025{\times}10^{-2}$ at $1.55{\mu}m$. In addition, over the S+C+L+U wavelength bands the proposed HS-PCF with ultraflat birefringence with a slope on the order of $10^{-5}$.