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Author

Dasol Lee

Bio: Dasol Lee is an academic researcher from Pohang University of Science and Technology. The author has contributed to research in topics: Spin Hall effect & Metamaterial. The author has an hindex of 20, co-authored 50 publications receiving 1053 citations. Previous affiliations of Dasol Lee include Gwangju Institute of Science and Technology & Yonsei University.

Papers published on a yearly basis

Papers
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Journal ArticleDOI
14 Sep 2017-ACS Nano
TL;DR: This work demonstrates a general platform for design of dual magnetic resonance based meta-holograms based on the geometric phase using silicon nanostructures that are quarter wavelength thick for visible light and can be unambiguously observed without a receiving screen even under the illumination of natural light.
Abstract: Efficient transmission-type meta-holograms have been demonstrated using high-index dielectric nanostructures based on Huygens’ principle. It is crucial that the geometry size of building blocks be judiciously optimized individually for spectral overlap of electric and magnetic dipoles. In contrast, reflection-type meta-holograms using the metal/insulator/metal scheme and geometric phase can be readily achieved with high efficiency and small thickness. Here, we demonstrate a general platform for design of dual magnetic resonance based meta-holograms based on the geometric phase using silicon nanostructures that are quarter wavelength thick for visible light. Significantly, the projected holographic image can be unambiguously observed without a receiving screen even under the illumination of natural light. Within the well-developed semiconductor industry, our ultrathin magnetic resonance-based meta-holograms may have promising applications in anticounterfeiting and information security.

164 citations

Journal ArticleDOI
10 Jan 2022-eLight
TL;DR: Hyperbolic metamaterials have an extremely high anisotropy with a hyperbolic dispersion relation and exhibit a high density of states which have been exploited in various applications, such as super-resolution imaging, negative refraction, and enhanced emission control as mentioned in this paper .
Abstract: Abstract Optical metamaterials have presented an innovative method of manipulating light. Hyperbolic metamaterials have an extremely high anisotropy with a hyperbolic dispersion relation. They are able to support high- k modes and exhibit a high density of states which produce distinctive properties that have been exploited in various applications, such as super-resolution imaging, negative refraction, and enhanced emission control. Here, state-of-the-art hyperbolic metamaterials are reviewed, starting from the fundamental principles to applications of artificially structured hyperbolic media to suggest ways to fuse natural two-dimensional hyperbolic materials. The review concludes by indicating the current challenges and our vision for future applications of hyperbolic metamaterials.

147 citations

Journal ArticleDOI
20 Jun 2018-ACS Nano
TL;DR: A concept of dual-mode metasurfaces that enables simultaneous control of phase and spectral responses for two kinds of operation modes of transmission and reflection, respectively is proposed.
Abstract: Although conventional metasurfaces have demonstrated many promising functionalities in light control by tailoring either phase or spectral responses of subwavelength structures, simultaneous control of both responses has not been explored yet. Here, we propose a concept of dual-mode metasurfaces that enables simultaneous control of phase and spectral responses for two kinds of operation modes of transmission and reflection, respectively. In the transmission mode, the dual-mode metasurface acts as conventional metasurfaces by tailoring phase distribution of incident light. In the reflection mode, a reflected colored image is produced under white light illumination. We also experimentally demonstrate a crypto-display as one application of the dual-mode metasurface. The crypto-display looks a normal reflective display under white light illumination but generates a hologram that reveals the encrypted phase information under single-wavelength coherent light illumination. Because two operation modes do not affect each other, the crypto-display can have applications in security techniques.

119 citations

Journal ArticleDOI
TL;DR: In this article, the authors exploit polycrystalline silicon to achieve both fabrication compatibility and hologram functionality at the wavelength of 532 nm, which is a significant reduction of optical power at visible wavelengths.
Abstract: Metasurfaces have shown many interesting physical phenomena by designing the subwavelength antennas and, thus, controlling the complex amplitude of optical waves. Practicality is one of the biggest challenges of metasurfaces because practical applications have not been realized yet, despite well-demonstrated metasurfaces such as achromatic lenses, holograms, and optical cloaks. Early metasurfaces composed of plasmonic resonators have a significant loss of optical power at visible wavelengths. Amorphous silicon, which is easy to fabricate, can overcome the optical loss only above the wavelength of 600 nm. Use of other dielectric materials such as crystalline silicon or titanium dioxide drastically increases the efficiency of the metasurfaces at whole visible wavelengths, but complex fabrication processes remain an ongoing challenge for practical applications. Here, we exploit polycrystalline silicon to achieve both fabrication compatibility and hologram functionality at the wavelength of 532 nm. Polarizati...

92 citations


Cited by
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01 Jan 2016
TL;DR: In this paper, the authors present the principles of optics electromagnetic theory of propagation interference and diffraction of light, which can be used to find a good book with a cup of coffee in the afternoon, instead of facing with some infectious bugs inside their computer.
Abstract: Thank you for reading principles of optics electromagnetic theory of propagation interference and diffraction of light. As you may know, people have search hundreds times for their favorite novels like this principles of optics electromagnetic theory of propagation interference and diffraction of light, but end up in harmful downloads. Rather than enjoying a good book with a cup of coffee in the afternoon, instead they are facing with some infectious bugs inside their computer.

2,213 citations

Journal ArticleDOI
TL;DR: In this paper, the authors investigated how elementary excitations of transition metal oxides show up in Resonant Inelastic X-ray Scattering (RIXS) spectra.
Abstract: Resonant Inelastic X-ray Scattering (RIXS) is an X-ray in, X-ray out technique that enables one to study the dispersion of excitations in solids. In this thesis, we investigated how various elementary excitations of transition metal oxides show up in RIXS spectra.

947 citations

Journal ArticleDOI
TL;DR: In this article, a review of the recent developments in dielectric structures for shaping optical wavefronts is presented with an outlook on future potentials and challenges that need to be overcome.
Abstract: During the past few years, metasurfaces have been used to demonstrate optical elements and systems with capabilities that surpass those of conventional diffractive optics. Here, we review some of these recent developments, with a focus on dielectric structures for shaping optical wavefronts. We discuss the mechanisms for achieving steep phase gradients with high efficiency, simultaneous polarization and phase control, controlling the chromatic dispersion, and controlling the angular response. Then, we review applications in imaging, conformal optics, tunable devices, and optical systems. We conclude with an outlook on future potentials and challenges that need to be overcome.

424 citations

Journal ArticleDOI
TL;DR: The underlying physical principles of metasurface optical elements are introduced and, drawing on various works in the literature, how their constituent nanostructures can be designed with a highly customizable effective index of refraction that incorporates both phase and dispersion engineering are discussed.
Abstract: Control over the dispersion of the refractive index is essential to the performance of most modern optical systems. These range from laboratory microscopes to optical fibres and even consumer products, such as photography cameras. Conventional methods of engineering optical dispersion are based on altering material composition, but this process is time-consuming and difficult, and the resulting optical performance is often limited to a certain bandwidth. Recent advances in nanofabrication have led to high-quality metasurfaces with the potential to perform at a level comparable to their state-of-the-art refractive counterparts. In this Review, we introduce the underlying physical principles of metasurface optical elements (with a focus on metalenses) and, drawing on various works in the literature, discuss how their constituent nanostructures can be designed with a highly customizable effective index of refraction that incorporates both phase and dispersion engineering. These metasurfaces can serve as an essential component for achromatic optics with unprecedented levels of performance across a broad bandwidth or provide highly customized, engineered chromatic behaviour in instruments such as miniature aberration-corrected spectrometers. We identify some key areas in which these achromatic or dispersion-engineered metasurface optical elements could be useful and highlight some future challenges, as well as promising ways to overcome them. Flat metasurface optics provides an emerging platform for combining semiconductor foundry methods of manufacturing and assembling with nanophotonics to produce high-end and multifunctional optical elements. This Review highlights the design of metasurfaces, recent advances in the field and initial promising applications.

366 citations