Skip to main content

Myung Joon Han

Korea Advanced Institute of Science and Technology · Materials Science

About the Lab

Professor Myung Joon Han's research lab specializes in theoretical and computational materials science, focusing on strongly correlated electron systems in complex oxides. The lab employs advanced first-principles methods such as density functional theory (DFT), dynamical mean-field theory (DMFT), and LDA+U approaches to investigate electronic structure, magnetism, and orbital physics in transition metal oxides, including iron-based superconductors, multiferroics, and oxide heterostructures. A central theme is the interplay between electronic correlations, orbital occupancy, and structural effects—particularly how doping, strain, and interface engineering can tune electronic properties at the atomic scale. The lab also explores the role of oxygen orbitals and charge transfer in determining emergent phenomena such as orbital polarization and magnetic order.

strongly correlated electronstransition metal oxidesdynamical mean-field theoryorbital engineeringoxide heterostructures

Research Overview

Papers
185
Total Citations
3,439
Papers (5y)
60
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
60total
2022
2023
2024
2025
2026
Citations per year (5y)
460total
20222023202420252026

Selected Papers

15
1
Article|141 citations·2006
O(N)LDA+Uelectronic structure calculation method based on the nonorthogonal pseudoatomic orbital basis
Myung Joon Han, Taisuke Ozaki, Jaejun Yu
SJR Q1Physical Review B

We report an implementation of the $\mathrm{LDA}+U$ method based on the state-of-the-art linear combination of pseudo-atomic orbital (LCPAO) method, which is suitable for large-scale $\mathrm{O}(N)$ electronic structure calculations based on the density functional theory. By introducing a dual representation of the occupation number matrix instead of the on-site or full representations, the $\mathrm{LDA}+U$ formalism is refined to be consistent with a nonorthogonal LCPAO basis in regard to the s

Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|125 citations·2009
Anisotropy, Itineracy, and Magnetic Frustration in High-TCIron Pnictides
Myung Joon Han, Quan Yin, Warren E. Pickett, Sergey Y. Savrasov
SJR Q1Physical Review LettersOA

Using first-principles density functional theory calculations combined with insight from a tight-binding representation, dynamical mean field theory, and linear response theory, we have extensively investigated the electronic structures and magnetic interactions of nine ferropnictides representing three different structural classes. The calculated magnetic interactions are found to be short range, and the nearest (J_{1a}) and next-nearest (J2) exchange constants follow the universal trend of J_{

Electronic, Optical and Magnetic MaterialsMaterials Science
3
Article|107 citations·2011
Dynamical Mean-Field Theory of Nickelate Superlattices
Myung Joon Han, Xin Wang, Chris A. Marianetti, Andrew J. Millis
SJR Q1Physical Review LettersOA

Dynamical mean-field methods are used to calculate the phase diagram, many-body density of states, relative orbital occupancy, and Fermi-surface shape for a realistic model of LaNiO(3)-based superlattices. The model is derived from density-functional band calculations and includes oxygen orbitals. The combination of the on-site Hunds interaction and charge transfer between the transition metal and the oxygen orbitals is found to reduce the orbital polarization far below the levels predicted eith

Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|98 citations·2009
Doping Driven (π, 0) Nesting and Magnetic Properties ofFe1+xTeSuperconductors
Myung Joon Han, Sergey Y. Savrasov
SJR Q1Physical Review LettersOA

To understand newly discovered superconductivity in Fe-based systems, we investigate the electronic structure and magnetic properties of Fe_{1+x}Te using first-principles density functional calculations. While the undoped FeTe has the same Fermi surface nested at (pi,pi) as in Fe arsenides, doping by approximately 0.5 electrons reveals a novel square-type Fermi surface showing a strong (pi,0) nesting and leading to a different magnetic structure. Our result strongly supports the same mechanism o

Electronic, Optical and Magnetic MaterialsMaterials Science
5
Article|84 citations·2007
Magnetic ordering and exchange interactions in multiferroicGaFeO3
Myung Joon Han, Taisuke Ozaki, Jaejun Yu
SJR Q1Physical Review B

We report our first-principles calculations on multiferroic $\mathrm{Ga}\mathrm{Fe}{\mathrm{O}}_{3}$. The total energy results for different spin and structural configurations reveal that the ground state of $\mathrm{Ga}\mathrm{Fe}{\mathrm{O}}_{3}$ in its ideal structure is antiferromagnetic but it is likely to have a possible site disorder of Fe and Ga atoms between octahedral Ga sites and Fe sites, which is consistent with previous experimental observations. Examining the exchange interactions

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|77 citations·2010
Chemical control of orbital polarization in artificially structured transition-metal oxides:La2NiXO6(X=B, Al, Ga, In)from first principles
Myung Joon Han, Chris A. Marianetti, A. J. Millis
SJR Q1Physical Review BOA

The application of modern layer-by-layer growth techniques to transition-metal oxide materials raises the possibility of creating new classes of materials with rationally designed correlated electron properties. An important step toward this goal is the demonstration that electronic structure can be controlled by atomic composition. In compounds with partially occupied transition-metal $d$ shells, one important aspect of the electronic structure is the relative occupancy of different $d$ orbital

Electronic, Optical and Magnetic MaterialsMaterials Science
7
Article|73 citations·2004
Electronic structure, magnetic interactions, and the role of ligands inMnn(n=4,12)single-molecule magnets
Myung Joon Han, Taisuke Ozaki, Jaejun Yu
SJR Q1Physical Review B

We report our first principles calculation studies of electronic structure and magnetic properties of the ${\mathrm{Mn}}_{n}$ $(n=4,12)$ single-molecule magnet, i.e., $[{\mathrm{Mn}}_{4}{\mathrm{O}}_{3}\mathrm{Cl}{(\mathrm{OAc})}_{3}{(\mathrm{dbm})}_{3}]$ $(\mathrm{dbmH}=\text{dibenzoyl}\text{\ensuremath{-}}\text{methane})$ and $[{\mathrm{Mn}}_{12}{\mathrm{O}}_{12}{({\mathrm{CH}}_{3}\mathrm{COO})}_{16}{({\mathrm{H}}_{2}\mathrm{O})}_{4}]$ molecules. For the calculations, we used the localized pse

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|57 citations·2020
Origin of ferromagnetism and the effect of doping on Fe3GeTe2
Seung Woo Jang, Hongkee Yoon, Min Yong Jeong, Siheon Ryee, Heung‐Sik Kim, Myung Joon Han
SJR Q1Nanoscale

Recent experimental findings of two dimensional ferromagnetism in Fe3GeTe2, whose critical temperature can reach room temperature by gating, has attracted great research interest. Here we performed elaborate ab initio studies using density functional theory, dynamical mean-field theory and magnetic force response theory. In contrast to the conventional wisdom, it is unambiguously shown that Fe3GeTe2 is not ferromagnetic but is antiferromagnetic, carrying zero net moment in its stoichiometric pha

Materials ChemistryMaterials Science
9
Article|48 citations·2020
Polymorphic Spin, Charge, and Lattice Waves in Vanadium Ditelluride
Dongyeun Won, Do Hoon Kiem, Hwanbeom Cho, Dohyun Kim, Younghak Kim, Min Yong Jeong, Changwon Seo, Jeongyong Kim, Je‐Geun Park, Myung Joon Han, Heejun Yang, Suyeon Cho
SJR Q1Advanced Materials

Abstract Lattice distortion, spin interaction, and dimensional crossover in transition metal dichalcogenides (TMDs) have led to intriguing quantum phases such as charge density waves (CDWs) and 2D magnetism. However, the combined effect of many factors in TMDs, such as spin–orbit, electron–phonon, and electron–electron interactions, stabilizes a single quantum phase at a given temperature and pressure, which restricts original device operations with various quantum phases. Here, nontrivial polym

Materials ChemistryMaterials Science
10
Article|42 citations·2021
Switching interlayer magnetic order in bilayer CrI3 by stacking reversal
Xiangru Kong, Hongkee Yoon, Myung Joon Han, Liangbo Liang
SJR Q1NanoscaleOA

First-principles calculations predict that rotating one layer by 180° over the other layer can switch the interlayer magnetic order in bilayer CrI 3 , demonstrating stacking rotation as an effective strategy to manipulate the magnetism in 2D magnets.

Materials ChemistryMaterials Science
11
Article|42 citations·2022
Field-tunable toroidal moment and anomalous Hall effect in noncollinear antiferromagnetic Weyl semimetal Co1/3TaS2
Pyeongjae Park, Y. Kang, Junghyun Kim, Ki Hoon Lee, Han-Jin Noh, Myung Joon Han, Je‐Geun Park
SJR Q1npj Quantum MaterialsOA

Abstract Combining magnetism with band topology provides various novel phases that are otherwise impossible. Among several cases, noncollinear metallic antiferromagnets can reveal particularly rich topological physics due to their diverse magnetic ground states. However, there are only a few experimental studies due to the lack of suitable materials, especially with triangular lattice antiferromagnets. Here, we report that metallic triangular antiferromagnet Co 1/3 TaS 2 exhibits a substantial a

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
12
Article|31 citations·2005
Electronic structure and magnetic properties of small manganese oxide clusters
Myung Joon Han, Taisuke Ozaki, Jaejun Yu
SJR Q1The Journal of Chemical Physics

To investigate the electronic structure and magnetic properties of manganese oxide clusters, we carried out first-principles electronic structure calculations for small MnO clusters. Among various structural and magnetic configurations of the clusters, the bulklike [111]-antiferromagnetic ordering is found to be favored energetically, while the surface atoms of the clusters exhibit interesting electronic and magnetic characteristics which are different from their bulk ones. The distinct features

Materials ChemistryMaterials Science
13
Article|31 citations·2022
Highly Luminescent and Multifunctional Zero‐Dimensional Cesium Lanthanide Chloride (Cs3LnCl6) Colloidal Nanocrystals
Minji Lee, Dong Hyun David Lee, Seong Vin Hong, Ho Young Woo, Ji‐Yeon Chae, Da Won Lee, Myung Joon Han, Taejong Paik
SJR Q1Advanced Optical Materials

Abstract Herein, the synthesis of novel, highly luminescent, and nearly monodisperse zero‐dimensional (0D) cesium lanthanide chloride (Cs 3 LnCl 6 ; Ln = Y, Ce, Gd, Er, Tm, Yb) colloidal nanocrystals (NCs) is reported for the first time. The Cs 3 LnCl 6 NCs are synthesized using a heating‐up method and exhibit highly uniform size and shape. The monoclinic‐phase Cs 3 LnCl 6 NCs contain completely isolated [LnCl 6 ] 3− octahedral units, resulting in 0D ternary metal halide structures. Therefore, t

Electrical and Electronic EngineeringEngineering
14
Article|26 citations·2019
Jx: An open-source software for calculating magnetic interactions based on magnetic force theory
Hongkee Yoon, Taek Jung Kim, Jae-Hoon Sim, Myung Joon Han
SJR Q1Computer Physics Communications
Electronic, Optical and Magnetic MaterialsMaterials Science
15
Article|24 citations·2022
Fe3GeTe2: a site-differentiated Hund metal
Taek Jung Kim, Siheon Ryee, Myung Joon Han
SJR Q1npj Computational MaterialsOA

Abstract Magnetism in two-dimensional (2D) van der Waals (vdW) materials has lately attracted considerable attention from the point of view of both fundamental science and device applications. Obviously, establishing a detailed and solid understanding of their magnetism is the key first step toward various applications. Although Fe 3 GeTe 2 is a representative ferromagnetic (FM) metal in this family, many aspects of its magnetic and electronic behaviors still remain elusive. Here, we report our

Materials ChemistryMaterials Science

Research Areas

Electronic, Optical and Magnetic MaterialsMaterials ChemistryCondensed Matter PhysicsAtomic and Molecular Physics, and OpticsElectrical and Electronic EngineeringInorganic Chemistry

Dive deeper into Myung Joon Han's research on Nubint

Open this lab's papers in the app to read with AI, summarize, and cite in your writing.