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Yong‐Hyun Kim

Korea Advanced Institute of Science and Technology · Materials Science

About the Lab

Professor Yong-Hyun Kim's research lab specializes in computational and experimental materials science, focusing on the atomic-scale design and stabilization of nanomaterials for energy and optoelectronic applications. Key research directions include the development of air-stable quantum dots for photovoltaics, understanding surface chemistry and ligand effects in nanocrystals, and exploring novel electronic and mechanical properties in 2D materials and nanostructures. The lab combines first-principles calculations with advanced characterization techniques to uncover structure-property relationships at the nanoscale.

quantum dotsnanomaterialsfirst-principles calculationssurface passivationenergy storage

Research Overview

Papers
385
Total Citations
12,186
Papers (5y)
51
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
51total
2022
2023
2024
2025
2026
Citations per year (5y)
353total
20222023202420252026

Selected Papers

15
1
Article|387 citations·2013
Steric-Hindrance-Driven Shape Transition in PbS Quantum Dots: Understanding Size-Dependent Stability
Hyekyoung Choi, Jae‐Hyeon Ko, Yong‐Hyun Kim, Sohee Jeong
SJR Q1Journal of the American Chemical Society

Ambient stability of colloidal nanocrystal quantum dots (QDs) is imperative for low-cost, high-efficiency QD photovoltaics. We synthesized air-stable, ultrasmall PbS QDs with diameter (D) down to 1.5 nm, and found an abrupt transition at D ≈ 4 nm in the air stability as the QD size was varied from 1.5 to 7.5 nm. X-ray photoemission spectroscopy measurements and density functional theory calculations reveal that the stability transition is closely associated with the shape transition of oleate-ca

Materials ChemistryMaterials Science
2
Article|333 citations·2006
Nondissociative Adsorption ofH2Molecules in Light-Element-Doped Fullerenes
Yong‐Hyun Kim, Yufeng Zhao, Andrew Williamson, Michael J. Heben, Shengbai Zhang
SJR Q1Physical Review Letters

First-principles density functional and quantum Monte Carlo calculations of light-element doped fullerenes reveal significantly enhanced molecular H2 binding for substitutional B and Be. A nonclassical three-center binding mechanism between the dopant and H2 is identified, which is maximized when the empty p(z) orbital of the dopant is highly localized. The calculated binding energies of 0.2-0.6 eV/H2 is suited for reversible hydrogen storage at near standard conditions. The calculated H2 sorpti

Materials ChemistryMaterials Science
3
Article|307 citations·2012
Enhanced Nanoscale Friction on Fluorinated Graphene
Sangku Kwon, Jae‐Hyeon Ko, Ki‐Joon Jeon, Yong‐Hyun Kim, Jeong Young Park
SJR Q1Nano Letters

Atomically thin graphene is an ideal model system for studying nanoscale friction due to its intrinsic two-dimensional (2D) anisotropy. Furthermore, modulating its tribological properties could be an important milestone for graphene-based micro- and nanomechanical devices. Here, we report unexpectedly enhanced nanoscale friction on chemically modified graphene and a relevant theoretical analysis associated with flexural phonons. Ultrahigh vacuum friction force microscopy measurements show that n

Materials ChemistryMaterials Science
4
Article|248 citations·2005
High‐Purity‐Blue and High‐Efficiency Electroluminescent Devices Based on Anthracene
Yong‐Hyun Kim, Hoon‐Eui Jeong, Sung‐Han Kim, Kunlong Yang, Seok‐Kyu Kwon
SJR Q1Advanced Functional Materials

Abstract Novel blue‐light‐emitting materials, 9,10‐bis(1,2‐diphenyl styryl)anthracene (BDSA) and 9,10‐bis(4′‐triphenylsilylphenyl)anthracene (BTSA), which are composed of an anthracene molecule as the main unit and a rigid and bulky 1,2‐diphenylstyryl or triphenylsilylphenyl side unit, have been designed and synthesized. Theoretical calculations on the three‐dimensional structures of BDSA and BTSA show that they have a non‐coplanar structure and inhibited intermolecular interactions, resulting i

Electrical and Electronic EngineeringEngineering
5
Article|202 citations·2014
Ultrastable PbSe Nanocrystal Quantum Dots via in Situ Formation of Atomically Thin Halide Adlayers on PbSe(100)
Ju Young Woo, Jae‐Hyeon Ko, Jung Hoon Song, Kyungnam Kim, Hyekyoung Choi, Yong‐Hyun Kim, Doh C. Lee, Sohee Jeong
SJR Q1Journal of the American Chemical Society

The fast degradation of lead selenide (PbSe) nanocrystal quantum dots (NQDs) in ambient conditions impedes widespread deployment of the highly excitonic, thus versatile, colloidal NQDs. Here we report a simple in situ post-synthetic halide salt treatment that results in size-independent air stability of PbSe NQDs without significantly altering their optoelectronic characteristics. From TEM, NMR, and XPS results and DFT calculations, we propose that the unprecedented size-independent air stabilit

Materials ChemistryMaterials Science
6
Article|163 citations·2001
Electronic structure of radially deformed BN andBC3nanotubes
Yong‐Hyun Kim, K. J. Chang, Steven G. Louie
Physical review. B, Condensed matter

We investigate the band-gap modification by radial deformation in BN and ${\mathrm{BC}}_{3}$ nanotubes through first-principles pseudopotential density-functional calculations. In zigzag BN nanotubes, radial deformations that give rise to transverse pressures of about 10 GPa decrease the gap from 5 to 2 eV, allowing for optical applications in the visible range. When armchair ${\mathrm{BC}}_{3}$ nanotubes with the gap of about 0.5 eV are collapsed down to the interlayer distance of 3.5 \AA{}, a

Materials ChemistryMaterials Science
7
Article|162 citations·2016
Intrinsic Photoluminescence Emission from Subdomained Graphene Quantum Dots
Hyewon Yoon, Yun Hee Chang, Sung Ho Song, Eui‐Sup Lee, Sunghwan Jin, Chanae Park, Jinsup Lee, Bo‐Hyun Kim, Hee Jae Kang, Yong‐Hyun Kim, Seokwoo Jeon
SJR Q1Advanced Materials

The photoluminescence (PL) origin of bright blue emission arising from intrinsic states in graphene quantum dots (GQDs) is investigated. The bright PL of intercalatively acquired GQDs is attributed to favorably formed subdomains composed of four to seven carbon hexagons. Random and harsh oxidation which hinders the energetically favorable formation of subdomains causes weak and redshifted PL. As a service to our authors and readers, this journal provides supporting information supplied by the au

Materials ChemistryMaterials Science
8
Article|153 citations·2011
Ambient Carbon Dioxide Capture by Boron-Rich Boron Nitride Nanotube
Heechol Choi, Young Choon Park, Yong‐Hyun Kim, Yoon Sup Lee
SJR Q1Journal of the American Chemical Society

Carbon dioxides (CO(2)) emitted from large-scale coal-fired power stations or industrial manufacturing plants have to be properly captured to minimize environmental side effects. From results of ab initio calculations using plane waves [PAW-PBE] and localized atomic orbitals [ONIOM(wB97X-D/6-31G*:AM1)], we report strong CO(2) adsorption on boron antisite (B(N)) in boron-rich boron nitride nanotube (BNNT). We have identified two adsorption states: (1) A linear CO(2) molecule is physically adsorbe

Materials ChemistryMaterials Science
9
Article|146 citations·2013
Nanotribological Properties of Fluorinated, Hydrogenated, and Oxidized Graphenes
Jae‐Hyeon Ko, Sangku Kwon, Ik-Su Byun, Jin Sik Choi, Bae Ho Park, Yong‐Hyun Kim, Jeong Young Park
SJR Q2Tribology Letters
Materials ChemistryMaterials Science
10
Article|131 citations·2016
Dopant-specific unzipping of carbon nanotubes for intact crystalline graphene nanostructures
Joonwon Lim, Uday Narayan Maiti, Nayoung Kim, Rekha Narayan, Won Jun Lee, Dong Sung Choi, Youngtak Oh, Ju Min Lee, Gil Yong Lee, Seok Hun Kang, Hyunwoo Kim, Yong‐Hyun Kim
SJR Q1Nature CommunicationsOA

Atomic level engineering of graphene-based materials is in high demand to enable customize structures and properties for different applications. Unzipping of the graphene plane is a potential means to this end, but uncontrollable damage of the two-dimensional crystalline framework during harsh unzipping reaction has remained a key challenge. Here we present heteroatom dopant-specific unzipping of carbon nanotubes as a reliable and controllable route to customized intact crystalline graphene-base

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Article|117 citations·2020
N2-dopant of graphene with electrochemically switchable bifunctional ORR/OER catalysis for Zn-air battery
Joonwon Lim, Ji‐Won Jung, Nayoung Kim, Gil Yong Lee, Ho Jin Lee, Yeunhee Lee, Dong Sung Choi, Ki Ro Yoon, Yong‐Hyun Kim, Il‐Doo Kim, Sang Ouk Kim
SJR Q1Energy storage materials
Renewable Energy, Sustainability and the EnvironmentEnergy
12
Article|117 citations·2003
Defective fullerenes and nanotubes as molecular magnets: Anab initiostudy
Yong‐Hyun Kim, Jin Choi, K. J. Chang, David Tománek
Physical review. B, Condensed matter

Using ab initio spin-density-functional calculations, we investigate the electronic and magnetic structures of a ${\mathrm{C}}_{60}$ fullerene during a structural transition to a nanotube segment by a series of Stone-Wales transformations. We find that partly opened intermediate cage structures may acquire a magnetic moment of several Bohr magnetons. Our results offer a possible explanation for the ferromagnetic behavior observed in polymerized ${\mathrm{C}}_{60}$ following exposure to high temp

Organic ChemistryChemistry
13
Article|107 citations·2015
Selective and Regenerative Carbon Dioxide Capture by Highly Polarizing Porous Carbon Nitride
Youngtak Oh, Viet-Duc Le, Uday Narayan Maiti, Jin Ok Hwang, Woo Jin Park, Joonwon Lim, Kyung Eun Lee, Youn‐Sang Bae, Yong‐Hyun Kim, Sang Ouk Kim
SJR Q1ACS Nano

Energy-efficient CO2 capture is a stringent demand for green and sustainable energy supply. Strong adsorption is desirable for high capacity and selective capture at ambient conditions but unfavorable for regeneration of adsorbents by a simple pressure control process. Here we present highly regenerative and selective CO2 capture by carbon nitride functionalized porous reduced graphene oxide aerogel surface. The resultant structure demonstrates large CO2 adsorption capacity at ambient conditions

Mechanical EngineeringEngineering
14
Article|95 citations·2016
Halide–Amine Co‐Passivated Indium Phosphide Colloidal Quantum Dots in Tetrahedral Shape
Kyungnam Kim, Dongsuk Yoo, Hyekyoung Choi, Sudarsan Tamang, Jae‐Hyeon Ko, Tae Whan Kim, Yong‐Hyun Kim, Sohee Jeong
Angewandte Chemie

Abstract Wet chemical synthesis of covalent III‐V colloidal quantum dots (CQDs) has been challenging because of uncontrolled surfaces and a poor understanding of surface–ligand interactions. We report a simple acid‐free approach to synthesize highly crystalline indium phosphide CQDs in the unique tetrahedral shape by using tris(dimethylamino) phosphine and indium trichloride as the phosphorus and indium precursors, dissolved in oleylamine. Our chemical analyses indicate that both the oleylamine

Materials ChemistryMaterials Science
15
Article|73 citations·2017
Enhancement of Friction by Water Intercalated between Graphene and Mica
Hyunsoo Lee, Jae‐Hyeon Ko, Jin Sik Choi, Jin Heui Hwang, Yong‐Hyun Kim, Miquel Salmerón, Jeong Young Park
SJR Q1The Journal of Physical Chemistry Letters

Common experience shows that friction converts mechanical energy into heat. The first part of this process is vibrational excitation of atoms at the interface between rubbing bodies. The second part is the removal of the vibration energy by transferring it from the interface to the substrate. However, it is difficult to disentangle the excitation and energy transfer processes. We solved this by using a system consisting of a SiO 2 -terminated tip sliding over graphene deposited on mica with inte

Atomic and Molecular Physics, and OpticsPhysics and Astronomy

Research Areas

Materials ChemistryElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsOrganic ChemistryComputer Networks and CommunicationsRenewable Energy, Sustainability and the Environment

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