Abstract
Nahyun Kim, Seawoo Moon, Hyeonjin Yoo, Seungyeop Lee, Chongjun Jin, Byoung Hoon Lee, Geunyoung Tak, Ji‐Hee Kim, Ki‐Ju Yee, Dongwook Kim
Abstract
Authors
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Institutions
Provenance
crossref
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openalex
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datacite
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Multifunctional inverted nanocone arrays for NonWetting, self-cleaning transparent surface with high mechanical robustness
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Plasmon-induced hot-electron generation at Nanoparticle/metal-oxide interfaces for photovoltaic and photocatalytic devices
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MoS2 Monolayers on Si and SiO2 Nanocone Arrays: influences of 3D Dielectric Material Refractive Index on 2D MoS2 Optical Absorption
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Dependence of plasmonic properties of silver island films on nanoparticle size and substrate coverage
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Optical properties of Ag and Cu
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A comprehensive review of ZnO materials and devices
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Role of oxygen vacancies on the green photoluminescence of microwave-assisted grown ZnO nanorods
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First-principles calculations of luminescence spectrum line shapes for defects in semiconductors: the example of GaN and ZnO
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Spontaneous emission probabilities at radio frequencies
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Antennas for light
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Surface photovoltage phenomena: theory, experiment, and applications
10.1016/s0167-5729(99)00002-3 · 1999
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KPFM visualisation of the schottky barrier at the interface between gold nanoparticles and silicon
10.1039/d3nr00178d · doi-reference
Measuring the surface photovoltage of a schottky barrier under intense light conditions: Zn/p-Si(100) by laser time-resolved extreme ultraviolet Photoelectron spectroscopy
10.1021/acs.jpcc.7b06406 · doi-reference
Surface photovoltage phenomena: theory, experiment, and applications
10.1016/s0167-5729(99)00002-3 · doi-reference
Directional and ionized physical vapor deposition for microelectronics applications
10.1116/1.590242 · doi-reference
Antennas for light
10.1038/nphoton.2010.237 · doi-reference
First-principles calculations of luminescence spectrum line shapes for defects in semiconductors: the example of GaN and ZnO
10.1103/physrevlett.109.267401 · doi-reference
Role of oxygen vacancies on the green photoluminescence of microwave-assisted grown ZnO nanorods
10.1016/j.jallcom.2020.156684 · doi-reference
A comprehensive review of ZnO materials and devices
10.1063/1.1992666 · doi-reference
Optical properties of Ag and Cu
10.1103/physrev.128.1622 · doi-reference
Dependence of plasmonic properties of silver island films on nanoparticle size and substrate coverage
10.1155/2013/247045 · doi-reference
Plasmon-enhanced surface photovoltage of ZnO/Ag nanogratings
10.1038/srep16727 · doi-reference
MoS2 Monolayers on Si and SiO2 Nanocone Arrays: influences of 3D Dielectric Material Refractive Index on 2D MoS2 Optical Absorption
10.1039/c8nr06597g · doi-reference
Plasmon-induced hot-electron generation at Nanoparticle/metal-oxide interfaces for photovoltaic and photocatalytic devices
10.1038/nphoton.2013.238 · doi-reference
Enhanced trion emission from WS2 monolayers directly exfoliated on Ag nanohole arrays
10.1016/j.jallcom.2024.175241 · doi-reference
Multifunctional inverted nanocone arrays for NonWetting, self-cleaning transparent surface with high mechanical robustness
10.1002/smll.201303051 · doi-reference
Broadband enhancement of anti-reflectivity for a high angle of incidence using nanocone geometry
10.1021/acsami.2c02356 · doi-reference
Light trapping in plasmonic nanovessels
10.1002/adom.201600980 · doi-reference
Invertible nanocup array supporting hybrid plasmonic resonances
10.1002/adom.201500737 · doi-reference
Multiple plasmon couplings in 3D hybrid au-nanoparticles-decorated Ag nanocone arrays boosting highly sensitive surface enhanced raman scattering
10.1007/s12274-021-3477-x · doi-reference
Manipulating coupled field enhancement in slot-under-groove nanoarrays for universal surface-enhanced raman scattering
10.1021/acsnano.3c07458 · doi-reference
Metallic plasmonic array structures: principles, fabrications, properties, and applications
10.1002/adma.202170392 · doi-reference
Plasmonics for improved photovoltaic devices
10.1038/nmat2629 · doi-reference
Plasmonics for extreme light concentration and manipulation
10.1038/nmat2630 · doi-reference