• Title/Summary/Keyword: Subwavelength

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Metamaterial Absorber Composed of Multi-layered Sub-wavelength Unit Cell (다층구조 서브파장 단위 셀로 구성된 메타물질 흡수체)

  • Kim, Hyung Ki
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.20 no.5
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    • pp.31-37
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    • 2020
  • In this paper, we propose a novel sub-wavelength unit cell metamaterial absorber using multi-layer structure. The proposed absorber consists of 4 layers, and each layer has a spiral resonator connected by a via hole. This structure increases inductance of the unit cell, and therefore the resonant frequency can shift to lower frequency. We optimized the proposed absorber, and the electrical size of the unit cell is dramatically reduced to 0.013 times of the wavelength. The performance of the proposed absorber is demonstrated with full-wave simulation and measurement results. An absorption rate exceeding 97% is achieved at 1.74GHz. In addition, the proposed absorber attains a high absorption rate of 90% for different polarization and incident angles.

Transmission Characteristics of Periodic Au Slits at Terahertz Regimes (테라헤르츠 영역에서 금으로 구성된 주기적인 소형 개구의 투과 현상)

  • Yoo, Sungjun;Park, Jong-Eon;Lee, Jun-yong;Choo, Hosung
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.29 no.2
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    • pp.77-82
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    • 2018
  • Electromagnetic wave transmission through periodic metal-insulator-metal(MIM) waveguides as a function of plate thickness has not been extensively studied at various terahertz frequencies. In this paper, we investigate the transmittances through gold MIM slits when a normally incident wave with parallel polarization is considered at several terahertz frequencies. In addition, the results are compared to the case of a perfect electric conductor, and the differences are discussed.

Theoretical and Numerical Study of Cylindrical-vector-mode Radiation Characteristics in Periodic Metallic Annular Slits and Their Applications

  • Kim, Hyuntai;Jeong, Yoonchan
    • Current Optics and Photonics
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    • v.2 no.5
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    • pp.482-487
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    • 2018
  • We investigate the radiation characteristics of radially polarized light and azimuthally polarized light through plasmonic subwavelength-scale annular slit (PSAS) structures, by means of both theoretical and numerical methods. Effective-medium theory was utilized to analyze the characteristics of PSAS structures, and the corresponding results showed that PSAS structures can function as a metallic medium for azimuthally polarized light, or as a low-loss dielectric medium for radially polarized light. Numerical calculations based on the finite-element method were also performed, to verify the theoretical analyses. It turned out that the numerical results supported the theoretical results. Moreover, we exploited the PSAS structures in novel nanophotonic elements with dual functionalities that could selectively focus or pass/block incident light, depending on its polarization state. For example, if PSAS structures were implemented in the dielectric region of a metallic Fresnel zone plate, the modified zone plate could function as a blocking element to azimuthally polarized light, yet as a focusing element to radially polarized light. On the contrary, if PSAS structures were implemented in the metallic region of a metallic Fresnel zone plate (i.e. the inverted form of the former), it could function as a focusing element to azimuthally polarized light, yet as a simple transparent element to radially polarized light.

Differential Transmission Spectra of Terahertz Metamaterial Resonances for Sensing Microorganisms (미생물에 의한 테라헤르츠 메타물질의 공명주파수 변화)

  • Park, S.J.;Ahn, Y.H.
    • Korean Journal of Optics and Photonics
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    • v.27 no.6
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    • pp.229-232
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    • 2016
  • Metamaterials operating in the terahertz frequency range show promising potential for use in highly sensitive microbial sensors that are capable of effectively detecting microorganisms in the ambient environment. We were able to detect extremely small numbers of microorganisms by measuring the differential transmission spectra (DTS) of the metamaterial resonances. This was possible because their sizes are on the same scale as the microgaps of the terahertz metamaterials. DTS depend critically on the number of microorganisms placed in the gap area, and their dielectric constant. In addition, these metamaterial microbial sensors are reusable, because the microorganisms can be completely removed by fungicide solution. Finite-difference time-domain simulations successfully reproduce our experimental data.

Transmission Cross Section of the Small Aperture in an Infinite Conducting Plane (도체 평판에서 소형 개구의 투과 단면적)

  • Ko, Ji-Hwan;Park, Soon-Woo;Cho, Young-Ki
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.30 no.4
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    • pp.300-306
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    • 2019
  • Transmission cross section(TCS) is described analytically as $2G{\lambda}^2/4{\pi}$ irrespective of the aperture shapes for various transmission resonant apertures, such as small ridged circular or H-shaped, U-shaped, or Jerusalem cross-shaped apertures in an infinite thin conducting plane. The proposed expression is validated by comparison with the numerical results obtained from the method of moments(MOM). The TCS characteristics of the transmission resonant cavity structure in a thick conducting plane are also studied and the equivalence between the two small aperture structures is reported from the viewpoint of transmission efficiency.

Nano Convergence Systems for Smart Living

  • Yeo, Jong-Souk
    • Proceedings of the Korean Vacuum Society Conference
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    • 2015.08a
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    • pp.55-55
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    • 2015
  • Today, engineers are facing new set of challenges that are quite different from the conventional ones. Information technologies are rapidly commoditizing while the paths beyond the current roadmaps became uncertain as various technologies have been pushed to their limits. Along with these changes in IT ecosystems, grand challenges such as global security, health, sustainability, and energy increasingly require trans-disciplinary solutions that go beyond the traditional arenas in STEM (Science, Technology, Engineering and Mathematics). Addressing these needs is shifting engineering education and research to a new paradigm where the emphasis is placed on the consilience for holistic and system level understanding and the convergence of technology with AHSD (arts, humanities, social science, and design). At the center of this evolutionary convergence, nanotechnologies are enabling novel functionalities such as bio-compatibility, flexibility, low power, and sustainability while on a mission to meet scalability and low cost for smart electronics, u-health, sensing networks, and self-sustainable energy systems. This talk introduces the efforts of convergence based on the emerging nano technology tool sets in the newly launched School of Integrated Technology and the Yonsei Institute of Convergence Technology at Yonsei International Campus. While the conventional devices have largely depended upon the inherent material properties, the newer devices are enabled by nanoscale dimensions and structures in increasingly standardized and scalable fabrication platform. Localized surface plasmon resonance in 0 dimensional nano particles and structures leads to subwavelength confinement and enhanced near-field interactions enabling novel field of metal photonics for sensing and integrated photonic applications [1,2]. Unique properties offered by 1 dimensional nanowires and 2 dimensional materials and structures can enable novel electronic, photonic, nano-bio, and biomimetic applications [3-5]. These novel functionalities offered by the emerging nanotechnologies are continuously finding pathways to be part of smart systems to improve the overall quality of life.

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Implementation of Highly Efficient GMR Color Filter using Asymmetric Si3N4 Gratings (비대칭 Si3N4 격자를 사용한 고효율 GMR 컬러 필터의 구현)

  • Ho, Kwang-Chun
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.17 no.1
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    • pp.225-230
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    • 2017
  • In this paper, a highly efficient GMR(guided-mode resonant) color filter is proposed and implemented. The GMR color filter consists of $Si_3N_4/air$ layers containing complementary fixed and mobile gratings. The device is designed using RETT(rigorous equivalent transmission-line theory) and a grating structure operating in subwavelength. The numerical result reveals that the color filter has a tuning capability of about 35 nm over the $0.45{\mu}m{\sim}0.55{\mu}m$ range for blue-green color and across $0.6{\mu}m{\sim}0.7{\mu}m$ range for red color. Furthermore, The color filters have a spectral bandwidth of about 8 nm with efficiencies of 99%, 98%, and 99% at the center wavelength of blue, green, and red color, respectively, and these are higher efficiencies than reported in the literature previously.

금 나노패턴을 이용한 서브파장구조를 가진 광대역 무반사 글래스의 제작 및 특성

  • Im, Jeong-U;Lee, Su-Hyeon;Guan, Xiang-Yu;Kim, Jeong-Tae;Jeong, Gwan-Su;Yu, Jae-Su
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.279.1-279.1
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    • 2014
  • 글래스(glass), 폴리머 또는 쿼츠와 같은 투명기판은 렌즈, 디스플레이, 광검출기, 광센서, 발광다이오드 및 태양전지와 같은 광 및 광전소자 분야에서 널리 사용되고 있다. 이러한 소자들의 경우, 광추출 또는 광흡수 효율을 향상시키는 것이 매우 중요하다. 그러나 투명기판의 경우, 약 1.5의 굴절율로 인해 표면에서 4% 반사가 발생되는데, 이러한 광학적 손실은 소자의 성능을 저하시키는 원인이 된다. 따라서, 글래스와 공기 경계면에서 발생되는 광손실을 줄이기 위한 효율적인 무반사 코팅이 필요하다. 최근, 우수한 내구성 뿐만 아니라, 광대역 파장 및 다방향성에서 무반사 특성을 보이는 서브파장 주기를 갖는 나노구조(subwavelength structures)의 형성 및 제작 공정에 관한 연구가 보고되고 있다. 이러한 나노구조는 경사 굴절율 분포를 가지는 유효 매질을 형성하기 때문에 투명기판 표면에서의 Fresnel 반사로 인한 광손실을 줄일 수 있다. 또한, 무반사 서브파장구조를 형성하기 위한 패터닝 방법으로, 간단/저렴하고 대면적 제작이 용이한 열적 응집 공정을 이용한 자가정렬된 금속 나노입자 형성 기술이 널리 사용되고 있다. 따라서 본 실험에서는 열적 응집현상에 의해 형성된 비주기적 금 나노입자 식각 마스크 패턴 및 유도결합 플라즈마 장비를 이용하여 글래스 기판 위에 무반사 서브파장 나노구조를 제작하였다. 금 나노패턴 및 제작된 글래스 서브파장 나노구조의 식각 프로파일은 주사전자현미경을 사용하여 관찰하였으며, UV-Vis-NIR 스펙트로미터를 사용하여 빛의 투과율을 측정하였다. 또한, 제작된 샘플들에 대해서, 표면 접촉각 측정 장비를 이용하여 표면 wettability를 조사하였다.

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열적 응집된 Pt 나노입자 마스크를 이용한 실리콘 나노구조 제작

  • Im, Jeong-U;Yu, Jae-Su
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.186-186
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    • 2011
  • 태양전지의 효율을 증가시키기 위해서는 표면에서의 Fresnel 반사를 줄여 입사된 빛이 흡수층까지 잘 도달되도록 해야 한다. 그러나 결정질 실리콘의 경우, 굴절률이 높아 32% 이상의 표면반사율을 보이고 있어, 실리콘 태양전지 표면에 단일 또는 다중 박막의 무반사 코팅을 통해 반사율을 낮추는 방법이 널리 사용 되어 오고 있었다. 하지만, 이와 같은 코팅 방법은 열적팽창 불일치, 물질 선택의 어려움뿐만 아니라 낮은 반사율을 포함하는 파장 및 빛의 입사각 영역의 제한 등 여러 문제점을 지니고 있다. 이러한 문제점을 보완하기 위해, 표면에 서브파장의 주기를 갖는 나노구조(subwavelength structure, SWS)의 형성에 관한 연구가 활발히 진행되고 있다. 습식 식각보다 건식 식각을 이용한 SWS 제작 방법이 표면 profile을 제어하기 용이하나 패턴 형성을 위해 식각 마스크가 필요하다. 최근, 복잡하고 고가의 전자빔 또는 나노임프린트를 이용한 패턴 형성보다, 간단/저렴하며 대면적 제작이 용이한 금속 나노입자 마스크를 이용한 SWS의 제작에 대한 연구가 활발히 진행되고 있다. 또한 SWS의 무반사 특성은 표면 profile에 따라 크게 영향을 받는다. 따라서 본 실험에서는 열적 응집현상에 의해 형성되는 self-assembled Pt 나노입자 식각 마스크 및 $SiCl_4$가스를 사용한 유도결합 플라즈마(inductively coupled plasma, ICP) 장비를 이용하여 무반사 실리콘 SWS를 제작하였으며, SWS 표면 profile에 따른 구조적 및 무반사 특성을 조사하기 위해 다양한 공정조건을 변화시켰다. 실리콘 기판 위의 Pt 박막은 전자빔 증착(e-beaml evaporation)법을 사용하였고, 급속 열처리(RTA)를 통해 Pt 나노입자의 식각 마스크를 형성시켰다. Pt 나노입자들의 패턴 및 제작된 무반사 실리콘 SWS의 식각 profile은 scanning electron microscope를 사용하여 관찰하였으며, UV-VIR-NIR spectrophotometer를 사용하여 350~1050 nm 파장 영역에서의 반사율을 측정하였다. ICP 식각 조건을 변화시켜 5% 이하의 낮은 반사율을 갖는 높이가 높고 쐐기 형태의 실리콘 SWS를 도출하였다.

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Gold Shell Nanocluster Networks in Designing Four-Branch (1×4) Y-Shape Optical Power Splitters

  • Ahmadivand, Arash;Golmohammadi, Saeed
    • Journal of the Optical Society of Korea
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    • v.18 no.3
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    • pp.274-282
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    • 2014
  • In this study, closely spaced Au nanoparticles which are arranged in nanocluster (heptamer) configurations have been employed to design efficient plasmonic subwavelength devices to function at the telecommunication spectrum (${\lambda}$~1550 nm). Utilizing two kinds of nanoparticles, the optical properties of heptamer clusters composed of Au rod and shell particles that are oriented in triphenylene molecular fashion have been investigated numerically, and the cross-sectional profiles of the scattering and absorption of the optical power have been calculated based on a finite-difference time-domain (FDTD) method. Plasmon hybridization theory has been utilized as a theoretical approach to characterize the features and properties of the adjacent and mutual heptamer clusters. Using these given nanostructures, we designed a complex four-branch ($1{\times}4$) Y-shape splitter that is able to work at the near infrared region (NIR). This splitter divides and transmits the magnetic plasmon mode along the mutual heptamers arrays. Besides, as an important and crucial parameter, we studied the impact of arm spacing (offset distance) on the guiding and dividing of the magnetic plasmon resonance propagation and by calculating the ratio of transported power in both nanorod and nanoshell-based structures. Finally, we have presented the optimal structure, that is the four-branch Y-splitter based on shell heptamers which yields the power ratio of 23.9% at each branch, 4.4 ${\mu}m$ decaying length, and 1450 nm offset distance. These results pave the way toward the use of nanoparticles clusters in molecular fashions in designing various efficient devices that are able to be efficient at NIR.