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Chang-Young Kim

Seoul National University · Physics and Astronomy

About the Lab

Professor Chang-Young Kim's research lab specializes in advanced spectroscopic techniques to investigate electronic structures and quantum phenomena in low-dimensional and correlated materials. The lab focuses on understanding charge transfer, electron correlation, and topological or magnetic states in 2D materials, transition metal dichalcogenides, and oxide systems using angle-resolved photoemission spectroscopy (ARPES) and other cutting-edge experimental methods. A key research direction involves probing and manipulating electronic properties—such as band-gap engineering, metal-insulator transitions, and emergent magnetic states like altermagnetism—through external stimuli including electric fields and alkali doping. The lab also integrates machine learning for data denoising and analysis, enhancing the efficiency and resolution of spectroscopic measurements.

ARPES2D materialselectron correlationband-gap engineeringaltermagnetism

Research Overview

Papers
255
Total Citations
3,559
Papers (5y)
75
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
75total
2022
2023
2024
2025
2026
Citations per year (5y)
1,226total
20222023202420252026

Selected Papers

15
1
Article|42 citations·2021
Understanding the Role of Electronic Effects in CO on the Pt–Sn Alloy Surface via Band Structure Measurements
Jongkeun Jung, Sungwoo Kang, Laurent Nicolaï, Jisook Hong, J. Minář, Inkyung Song, Wonshik Kyung, Soo-hyun Cho, Beom Seo Kim, Jonathan D. Denlinger, F.J. Cadete Santos Aires, E. Ehret
SJR Q1ACS CatalysisOA

Using angle-resolved photoemission spectroscopy, we show direct evidence for charge transfer between adsorbed molecules and metal substrates, i.e., chemisorption of CO on Pt(111) and Pt–Sn/Pt(111) 2 × 2 surfaces. The observed band structures show a unique signature of charge transfer as CO atoms are adsorbed, revealing the roles of specific orbital characters participating in the chemisorption process. As the coverage of CO increases, the degree of charge transfer between CO and Pt shows a clear

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|42 citations·2021
Deep learning-based statistical noise reduction for multidimensional spectral data
Younsik Kim, Dongjin Oh, Soonsang Huh, Dongjoon Song, Sunbeom Jeong, Junyoung Kwon, Minsoo Kim, Donghan Kim, Hanyoung Ryu, Jongkeun Jung, Wonshik Kyung, Byungmin Sohn
SJR Q2Review of Scientific InstrumentsOA

In spectroscopic experiments, data acquisition in multi-dimensional phase space may require long acquisition time, owing to the large phase space volume to be covered. In such a case, the limited time available for data acquisition can be a serious constraint for experiments in which multidimensional spectral data are acquired. Here, taking angle-resolved photoemission spectroscopy (ARPES) as an example, we demonstrate a denoising method that utilizes deep learning as an intelligent way to overc

Materials ChemistryMaterials Science
3
Article|36 citations·2017
Possible electric field induced indirect to direct band gap transition in MoSe2
Beom Seok Kim, Wonshik Kyung, Jong-Jin Seo, Junyoung Kwon, Jonathan D. Denlinger, Changyoung Kim, S. R. Park
SJR Q1Scientific ReportsOA

Abstract Direct band-gap semiconductors play the central role in optoelectronics. In this regard, monolayer (ML) MX 2 (M = Mo, W; X = S, Se) has drawn increasing attention due to its novel optoelectronic properties stemming from the direct band-gap and valley degeneracy. Unfortunately, the more practically usable bulk and multilayer MX 2 have indirect-gaps. It is thus highly desired to turn bulk and multilayer MX 2 into direct band-gap semiconductors by controlling external parameters. Here, we

Materials ChemistryMaterials Science
4
Article|33 citations·2015
Microscopic mechanism for the Rashba spin-band splitting: Perspective from formation of local orbital angular momentum
Seung Ryong Park, Changyoung Kim
SJR Q2Journal of Electron Spectroscopy and Related Phenomena
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Review|30 citations·2018
Spectroscopic Studies on the Metal–Insulator Transition Mechanism in Correlated Materials
So Yeun Kim, Min‐Cheol Lee, Garam Han, Marie Kratochvílová, Seokhwan Yun, S. J. Moon, Changhee Sohn, Je‐Geun Park, Changyoung Kim, Tae Won Noh
SJR Q1Advanced MaterialsOA

Abstract The metal–insulator transition (MIT) in correlated materials is a novel phenomenon that accompanies a large change in resistivity, often many orders of magnitude. It is important in its own right but its switching behavior in resistivity can be useful for device applications. From the material physics point of view, the starting point of the research on the MIT should be to understand the microscopic mechanism. Here, an overview of recent efforts to unravel the microscopic mechanisms fo

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|24 citations·2016
Enhanced superconductivity in surface-electron-doped iron pnictide Ba(Fe1.94Co0.06)2As2
Wonshik Kyung, Soonsang Huh, Youngwoo Koh, Kwanseok Choi, M. Nakajima, Hiroshi Eisaki, Jonathan D. Denlinger, Sung‐Kwan Mo, Changyoung Kim, Yong Kyun Kim
SJR Q1Nature MaterialsOA
Electronic, Optical and Magnetic MaterialsMaterials Science
7
Article|23 citations·2019
Hump-like structure in Hall signal from ultra-thin SrRuO3 films without inhomogeneous anomalous Hall effect
Byungmin Sohn, Bongju Kim, Jun Woo Choi, Seo Hyoung Chang, Jung Hoon Han, Changyoung Kim
SJR Q2Current Applied PhysicsOA
Condensed Matter PhysicsPhysics and Astronomy
8
Article|23 citations·2024
Spin‐Orbit Coupling Driven Magnetic Response in Altermagnetic RuO 2
Jeongkeun Song, Seung Hun Lee, San Kang, Donghan Kim, Ji Hwan Jeong, Taekoo Oh, Sangjae Lee, Suyoung Lee, Sangmin Lee, Kyo‐Hoon Ahn, Kwan Woo Lee, Miyoung Kim
SJR Q1Small

Abstract The recent prediction of the new magnetic class, altermagnetism, has drawn considerable interest, fueled by its potential to host novel phenomena and to be utilized in next‐generation spintronics devices. Among many promising candidates, rutile RuO 2 is a prototypical candidate for realizing the prospects of altermagnetism. However, the experimental studies on RuO 2 are still in the early stages. In this study, the magnetic responses in RuO 2 film are investigated by the Planar Hall eff

Electronic, Optical and Magnetic MaterialsMaterials Science
9
Article|20 citations·1992
Fermi-level inhomogeneities on the GaAs (110) surface imaged with a photoelectron microscope
Changyoung Kim, Paul L. King, P. Pianetta
Journal of Vacuum Science & Technology B Microelectronics and Nanometer Structures Processing Measurement and Phenomena

A photoelectron microscope operating with a retarding field analyzer can exploit core level energy shifts in order to image Fermi-level variations of semiconductor surfaces. Fermi-level maps of cleaved n- and p-type GaAs (110) resolved to better than 10 μm indicate lateral variations in the surface Fermi level which are often quite abrupt. In agreement with earlier, lower resolution work [J. M. Palau, E. Testemale, and L. Lassabatere, J. Vac. Sci. Technol. 19, 192 (1981)],1 Fermi-level topograph

Surfaces, Coatings and FilmsMaterials Science
10
Article|16 citations·2024
Atomically Thin Two-Dimensional Kagome Flat Band on the Silicon Surface
Jae Hyuck Lee, Gwan Woo Kim, Gwan Woo Kim, Inkyung Song, Yejin Kim, Yeonjae Lee, Sung Jong Yoo, Deok‐Yong Cho, Jun‐Won Rhim, Jongkeun Jung, Gunn Kim, Gunn Kim
SJR Q1ACS Nano

In condensed matter physics, the Kagome lattice and its inherent flat bands have attracted considerable attention for their prediction and observation to host a variety of exotic physical phenomena. Despite extensive efforts to fabricate thin films of Kagome materials aimed at modulating flat bands through electrostatic gating or strain manipulation, progress has been limited. Here, we report the observation of a d-orbital hybridized Kagome-derived flat band in Ag/Si(111) 3 × 3 as revealed by an

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|16 citations·2022
Signature of Kondo hybridisation with an orbital-selective Mott phase in 4d Ca2−xSrxRuO4
Minsoo Kim, Junyoung Kwon, Choong H. Kim, Younsik Kim, Daun Chung, Hanyoung Ryu, Jongkeun Jung, Beom Seo Kim, Dongjoon Song, Jonathan D. Denlinger, Moonsup Han, Yoshiyuki Yoshida
SJR Q1npj Quantum MaterialsOA

Abstract The heavy fermion state with Kondo-hybridisation (KH), usually manifested in f -electron systems with lanthanide or actinide elements, was recently discovered in several 3 d transition metal compounds without f -electrons. However, KH has not yet been observed in 4 d /5 d transition metal compounds, since more extended 4 d /5 d orbitals do not usually form flat bands that supply localised electrons appropriate for Kondo pairing. Here, we report a substitution- and temperature-dependent

Condensed Matter PhysicsPhysics and Astronomy
12
Article|12 citations·2019
Strong One-Dimensional Characteristics of Hole-Carriers in ReS2 and ReSe2
Beom Seok Kim, Wonshik Kyung, Jonathan D. Denlinger, Changyoung Kim, S. R. Park
SJR Q1Scientific ReportsOA

Abstract Each plane of layered ReS 2 and ReSe 2 materials has 1D chain structure, from which intriguing properties such as 1D character of the exciton states and linearly polarized photoluminescence originate. However, systematic studies on the 1D character of charge carriers have not been done yet. Here, we report on systematic and comparative studies on the energy-momentum dispersion relationships of layered transition metal dichalcogenides ReS 2 and ReSe 2 by angle resolved photoemission. We

Materials ChemistryMaterials Science
13
Article|10 citations·2023
Tuning orbital-selective phase transitions in a two-dimensional Hund’s correlated system
Eun Kyo Ko, Sungsoo Hahn, Changhee Sohn, Sangmin Lee, Seung‐Sup B. Lee, Byungmin Sohn, Jeong Rae Kim, Jaeseok Son, Jeongkeun Song, Youngdo Kim, Donghan Kim, Miyoung Kim
SJR Q1Nature CommunicationsOA

Abstract Hund’s rule coupling ( J ) has attracted much attention recently for its role in the description of the novel quantum phases of multi-orbital materials. Depending on the orbital occupancy, J can lead to various intriguing phases. However, experimental confirmation of the orbital occupancy dependency has been difficult as controlling the orbital degrees of freedom normally accompanies chemical inhomogeneities. Here, we demonstrate a method to investigate the role of orbital occupancy in

Condensed Matter PhysicsPhysics and Astronomy
14
Article|9 citations·2021
Antiperovskite Gd3SnC: Unusual Coexistence of Ferromagnetism and Heavy Fermions in Gd Lattice
Joonho Bang, Jongho Park, Kimoon Lee, Minsoo Kim, Wonshik Kyung, Jonathan D. Denlinger, Yeongkwan Kim, Young Hee Lee, Changyoung Kim, Sung Wng Kim
SJR Q1Advanced Materials

Abstract Inverted structures of common crystal lattices, referred to as antistructures, are rare in nature due to their thermodynamic constraints imposed by the switched cation and anion positions in reference to the original structure. However, a stable antistructure formed with mixed bonding characters of constituent elements in unusual valence states can provide unexpected material properties. Here, a heavy‐fermion behavior of ferromagnetic gadolinium lattice in Gd 3 SnC antiperovskite is rep

Materials ChemistryMaterials Science
15
Article|9 citations·2023
Heteroepitaxial Control of Fermi Liquid, Hund Metal, and Mott Insulator Phases in Single‐Atomic‐Layer Ruthenates
Jeong Rae Kim, Byungmin Sohn, Hyeong Jun Lee, Sangmin Lee, Eun Kyo Ko, Sungsoo Hahn, Sangjae Lee, Younsik Kim, Donghan Kim, Hong Joon Kim, Youngdo Kim, Jaeseok Son
SJR Q1Advanced MaterialsOA

Interfaces between dissimilar correlated oxides can offer devices with versatile functionalities, and great efforts have been made to manipulate interfacial electronic phases. However, realizing such phases is often hampered by the inability to directly access the electronic structure information; most correlated interfacial phenomena appear within a few atomic layers from the interface. Here, atomic-scale epitaxy and photoemission spectroscopy are utilized to realize the interface control of co

Condensed Matter PhysicsPhysics and Astronomy

Research Areas

Condensed Matter PhysicsAtomic and Molecular Physics, and OpticsMaterials ChemistryElectronic, Optical and Magnetic MaterialsElectrical and Electronic EngineeringSurfaces, Coatings and Films

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