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Se Kwon Kim

Korea Advanced Institute of Science and Technology · 物理学・天文学

研究室紹介

Professor Se Kwon Kim's research lab specializes in theoretical condensed matter physics, focusing on topological spin textures and their emergent quantum phenomena in low-dimensional magnetic systems. The lab investigates the interplay between topology, magnetism, and spin dynamics, particularly in skyrmions, magnons, and solitons, with applications in spintronics and quantum information. Key themes include the emergence of fictitious gauge fields, thermal and electrical transport in topological magnets, and the manipulation of magnetic textures via spin currents and temperature gradients. The lab combines advanced field-theoretic methods with stochastic dynamics to explore non-equilibrium and topological responses in quantum magnets.

topological magnonicsskyrmion dynamicsspin superfluiditythermal Hall effectmagnon topology

Research Overview

Papers
182
Total Citations
4,116
Papers (5y)
80
Primary Field
物理学・天文学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
80total
2022
2023
2024
2025
2026
Citations per year (5y)
305total
20222023202420252026

Selected Papers

15
1
Review|343 citations·2021
Ferrimagnetic spintronics
Se Kwon Kim, Geoffrey S. D. Beach, Kyung‐Jin Lee, Teruo Ono, Th. Rasing, Hyunsoo Yang
SJR Q1Nature Materials
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|235 citations·2016
Realization of the Haldane-Kane-Mele Model in a System of Localized Spins
Se Kwon Kim, Héctor Ochoa, Ricardo Zarzuela, Yaroslav Tserkovnyak
SJR Q1Physical Review LettersOA

We study a spin Hamiltonian for spin-orbit-coupled ferromagnets on the honeycomb lattice. At sufficiently low temperatures supporting the ordered phase, the effective Hamiltonian for magnons, the quanta of spin-wave excitations, is shown to be equivalent to the Haldane model for electrons, which indicates the nontrivial topology of the band and the existence of the associated edge state. At high temperatures comparable to the ferromagnetic-exchange strength, we take the Schwinger-boson represent

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
3
Article|145 citations·2014
Propulsion of a domain wall in an antiferromagnet by magnons
Se Kwon Kim, Yaroslav Tserkovnyak, Oleg Tchernyshyov
SJR Q1Physical Review BOA

An analytical solution to the complex problem of spin waves interacting with a domain wall elucidates how domain walls in an antiferromagnet can be propelled by reflected magnons and, less obviously, by magnons that are passing through them.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|101 citations·2017
Self-focusing skyrmion racetracks in ferrimagnets
Se Kwon Kim, Kyung‐Jin Lee, Yaroslav Tserkovnyak
SJR Q1Physical review. B./Physical review. BOA

Skyrmions, swirling magnetic textures with a topological character, have been gaining much attention in spintronics due to the fundamental interest as well as their touted utility as information carriers in ultradense and low-power memory devices. Generally, a skyrmion behaves as a massive particle moving in a viscous medium and experiencing a Magnus force, which is proportional to its winding number and the spin polarization of the magnet. There is a class of tunable ferrimagnets, such as rare-

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|85 citations·2019
Tunable Magnonic Thermal Hall Effect in Skyrmion Crystal Phases of Ferrimagnets
Se Kwon Kim, Kouki Nakata, Daniel Loss, Yaroslav Tserkovnyak
SJR Q1Physical Review LettersOA

We theoretically study the thermal Hall effect by magnons in skyrmion crystal phases of ferrimagnets in the vicinity of the angular momentum compensation point (CP). To this end, we start by deriving the equation of motion for magnons in the background of an arbitrary equilibrium spin texture, which gives rise to the fictitious electromagnetic field for magnons. As the net spin density varies, the resultant equation of motion interpolates between the relativistic Klein-Gordon equation at the CP

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
6
Article|73 citations·2020
Distinct handedness of spin wave across the compensation temperatures of ferrimagnets
Changsoo Kim, Soogil Lee, Hyun-Gyu Kim, Ji‐Ho Park, Kyung-Woong Moon, Jae Yeol Park, Jong Min Yuk, Kyung‐Jin Lee, Byong‐Guk Park, Se Kwon Kim, Kab‐Jin Kim, Chanyong Hwang
SJR Q1Nature Materials
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|45 citations·2015
Thermophoresis of an antiferromagnetic soliton
Se Kwon Kim, Oleg Tchernyshyov, Yaroslav Tserkovnyak
SJR Q1Physical Review BOA

We study the dynamics of an antiferromagnetic soliton under a temperature gradient. To this end, we start by phenomenologically constructing the stochastic Landau-Lifshitz-Gilbert equation for an antiferromagnet with the aid of the fluctuation-dissipation theorem. We then derive the Langevin equation for the soliton's center of mass by the collective coordinate approach. An antiferromagentic soliton behaves as a classical massive particle immersed in a viscous medium. By considering a thermodyna

Biomedical EngineeringEngineering
8
Article|43 citations·2019
Dynamics of bimeron skyrmions in easy-plane magnets induced by a spin supercurrent
Se Kwon Kim
SJR Q1Physical review. B./Physical review. BOA

We theoretically study the interaction of an isolated bimeron skyrmion in quasi-two-dimensional easy-plane magnets with a surrounding spin superfluid associated with spontaneously broken U(1) spin-rotational symmetry, revealing that skyrmion energy depends on the local spin current flowing in its background. The finding leads us to propose to manipulate a skyrmion energy landscape via a spin supercurrent, which can be controlled nonlocally by varying the magnitudes of spin-current injection and

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
9
Article|42 citations·2017
Chiral Edge Mode in the Coupled Dynamics of Magnetic Solitons in a Honeycomb Lattice
Se Kwon Kim, Yaroslav Tserkovnyak
SJR Q1Physical Review LettersOA

Motivated by a recent experimental demonstration of a chiral edge mode in an array of spinning gyroscopes, we theoretically study the coupled gyration modes of topological magnetic solitons, vortices and magnetic bubbles, arranged as a honeycomb lattice. The soliton lattice under suitable conditions is shown to support a chiral edge mode like its mechanical analogue, the existence of which can be understood by mapping the system to the Haldane model for an electronic system. The direction of the

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
10
Article|41 citations·2015
Landau-Lifshitz theory of thermomagnonic torque
Se Kwon Kim, Yaroslav Tserkovnyak
SJR Q1Physical Review BOA

We derive the thermomagnonic torque associated with smooth magnetic textures subjected to a temperature gradient in the framework of the stochastic Landau-Lifshitz-Gilbert equation. Our approach captures on equal footing two distinct contributions: (i) a local entropic torque that is caused by a temperature dependence of the effective exchange field, the existence of which had been previously suggested based on numerics, and (ii) the well-known spin-transfer torque induced by thermally induced m

Atmospheric ScienceEarth and Planetary Sciences
11
Article|40 citations·2013
Pinning of a Bloch point by an atomic lattice
Se Kwon Kim, Oleg Tchernyshyov
SJR Q1Physical Review BOA

Bloch points are magnetic topological defects. The discrete nature of a magnetic lattice creates a periodic potential that can pin a Bloch point. The pinning force is of the order of the exchange constant, a few piconewtons in a typical ferromagnet (permalloy). A domain wall containing a Bloch point can have a sizable depinning field in the tens of oersteds.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
12
Article|35 citations·2017
Magnetic Domain Walls as Hosts of Spin Superfluids and Generators of Skyrmions
Se Kwon Kim, Yaroslav Tserkovnyak
SJR Q1Physical Review LettersOA

A domain wall in a magnet with easy-axis anisotropy is shown to harbor spin superfluid associated with its spontaneous breaking of the U(1) spin-rotational symmetry. The spin superfluid is shown to have several topological properties, which are absent in conventional superfluids. First, the associated phase slips create and destroy Skyrmions to obey the conservation of the total Skyrmion charge, which allows us to use a domain wall as a generator and detector of Skyrmions. Second, the domain wal

Condensed Matter PhysicsPhysics and Astronomy
13
Article|33 citations·2016
Thermally activated phase slips in superfluid spin transport in magnetic wires
Se Kwon Kim, So Takei, Yaroslav Tserkovnyak
SJR Q1Physical review. B./Physical review. BOA

We theoretically study thermally activated phase slips in superfluid spin transport in easy-plane magnetic wires within the stochastic Landau-Lifshitz-Gilbert phenomenology, which runs parallel to the Langer-Ambegaokar-McCumber-Halperin theory for thermal resistances in superconducting wires. To that end, we start by obtaining the exact solutions for free-energy minima and saddle points. We provide an analytical expression for the phase-slip rate in the zero spin-current limit, which involves a

Condensed Matter PhysicsPhysics and Astronomy
14
Article|30 citations·2024
Magnon Orbital Nernst Effect in Honeycomb Antiferromagnets without Spin–Orbit Coupling
Gyungchoon Go, Daehyeon An, Hyun‐Woo Lee, Se Kwon Kim
SJR Q1Nano LettersOA

Recently, topological responses of magnons have emerged as a central theme in magnetism and spintronics. However, resulting Hall responses are typically weak and infrequent, since, according to present understanding, they arise from effective spin-orbit couplings, which are weaker compared to the exchange energy. Here, by investigating transport properties of magnon orbital moments, we predict that the magnon orbital Nernst effect is an intrinsic characteristic of the honeycomb antiferromagnet a

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|26 citations·2015
Topological spin transport by Brownian diffusion of domain walls
Se Kwon Kim, So Takei, Yaroslav Tserkovnyak
SJR Q1Physical Review BOA

We propose thermally populated domain walls (DWs) in an easy-plane ferromagnetic insulator as robust spin carriers between two metals. The chirality of a DW, which serves as a topological charge, couples to the metal spin accumulation via spin-transfer torque and results in the chirality-dependent thermal nucleation rates of DWs at the interface. After overpopulated DWs of a particular (net) chirality diffuse and leave the ferromagnet at the other interface, they reemit the spin current by spin

Condensed Matter PhysicsPhysics and Astronomy

Research Areas

Atomic and Molecular Physics, and OpticsCondensed Matter PhysicsElectronic, Optical and Magnetic MaterialsMaterials ChemistryBiomedical EngineeringElectrical and Electronic Engineering

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