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Cheon Sang-Mo

Hanyang University · 物理学・天文学

研究室紹介

Professor Cheon Sang-Mo's research lab specializes in topological quantum phenomena, strongly correlated electron systems, and nanoscale electronic device engineering. The lab explores emergent quantum states in low-dimensional materials—particularly charge density wave systems, Mott insulators, and topological edge states—focusing on their unique electronic, optical, and mechanical responses. Key research directions include the manipulation of topological solitons, chiral transport, and the design of multifunctional electronic skins and photonic devices with topologically protected states.

topological edge statescharge density wavesMott insulatorsnanoscale electronic manipulationenergy-harvesting devices

Research Overview

Papers
47
Total Citations
1,495
Papers (5y)
19
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)
19total
2021
2022
2023
2024
2025
Citations per year (5y)
145total
20212022202320242025

Selected Papers

15
1
Article|559 citations·2014
Stretchable Energy‐Harvesting Tactile Electronic Skin Capable of Differentiating Multiple Mechanical Stimuli Modes
Steve Park, Hyunjin Kim, Hyunjin Kim, Michael Vosgueritchian, Sangmo Cheon, Hyeok Kim, Hyeok Kim, Ja Hoon Koo, Taeho Roy Kim, Sanghyo Lee, Gregory Schwartz, Hyuk Chang
SJR Q1Advanced Materials

The first stretchable energy-harvesting electronic-skin device capable of differentiating and generating energy from various mechanical stimuli, such as normal pressure, lateral strain, bending, and vibration, is presented. A pressure sensitivity of 0.7 kPa-1 is achieved in the pressure region <1 kPa with power generation of tens of μW cm-2 from a gentle finger touch. As a service to our authors and readers, this journal provides supporting information supplied by the authors. Such materials are

Biomedical EngineeringEngineering
2
Article|238 citations·2016
Nanoscale manipulation of the Mott insulating state coupled to charge order in 1T-TaS2
Doo‐Hee Cho, Sangmo Cheon, Ki‐Seok Kim, Sung‐Hoon Lee, Yong-Heum Cho, Sang‐Wook Cheong, Han Woong Yeom
SJR Q1Nature CommunicationsOA

The controllability over strongly correlated electronic states promises unique electronic devices. A recent example is an optically induced ultrafast switching device based on the transition between the correlated Mott insulating state and a metallic state of a transition metal dichalcogenide 1T-TaS2. However, the electronic switching has been challenging and the nature of the transition has been veiled. Here we demonstrate the nanoscale electronic manipulation of the Mott state of 1T-TaS2. The

Materials ChemistryMaterials Science
3
Article|139 citations·2015
Chiral solitons in a coupled double Peierls chain
Sangmo Cheon, Tae-Hwan Kim, Sung‐Hoon Lee, Han Woong Yeom
SJR Q1Science

Chiral edge states are the hallmark of two- and three-dimensional topological materials, but their one-dimensional (1D) analog has not yet been found. We report that the 1D topological edge states, solitons, of the charge density wave system of indium atomic wires self-assembled on a silicon surface have chirality. The system is described by a coupled double Peierls-dimerized atomic chain, where the interchain coupling induces dynamical sublattice symmetry breaking. This changes its topological

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|88 citations·2011
Calculating the partition function of N = 2 gauge theories on S 3 and AdS/CFT correspondence
Sangmo Cheon, Hyojoong Kim, Nakwoo Kim
SJR Q1Journal of High Energy PhysicsOA
Nuclear and High Energy PhysicsPhysics and Astronomy
5
Article|83 citations·2022
Circular Dichroism of Emergent Chiral Stacking Orders in Quasi-One-Dimensional Charge Density Waves
Sun-Woo Kim, Hyun‐Jung Kim, Sangmo Cheon, Tae-Hwan Kim
SJR Q1Physical Review LettersOA

Chirality-driven optical properties in charge density waves are of fundamental and practical importance. Here, we investigate the interaction between circularly polarized light and emergent chiral stacking orders in quasi-one-dimensional (quasi-1D) charge-density waves (CDWs) with density-functional theory calculations. In our specific system, self-assembled In nanowires on a Si(111) surface, spontaneous mirror symmetry breaking leads to four symmetrically distinct degenerate quasi-1D CDW struct

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
6
Article|57 citations·2017
Switching chiral solitons for algebraic operation of topological quaternary digits
Tae-Hwan Kim, Sangmo Cheon, Han Woong Yeom
SJR Q1Nature PhysicsOA
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|50 citations·2009
SIM(2)-invariant modifications of electrodynamic theory
Sangmo Cheon, Choonkyu Lee, Seung‐Jae Lee
SJR Q1Physics Letters BOA
Statistical and Nonlinear PhysicsPhysics and Astronomy
8
Article|43 citations·2011
Refined test of AdS 4 /CFT 3 correspondence for N = 2,3 theories
Sangmo Cheon, Dongmin Gang, Seok Kim, Jaemo Park
SJR Q1Journal of High Energy PhysicsOA
Nuclear and High Energy PhysicsPhysics and Astronomy
9
Article|34 citations·2018
Unconventional anomalous Hall effect from antiferromagnetic domain walls ofNd2Ir2O7thin films
Woo Jin Kim, J. H. Gruenewald, Taekoo Oh, Sangmo Cheon, Bongju Kim, O. B. Korneta, Hwanbeom Cho, Daesu Lee, Yoonkoo Kim, Miyoung Kim, Je‐Geun Park, Bohm-Jung Yang
SJR Q1Physical review. B./Physical review. BOA

Ferroic domain walls (DWs) create different symmetries and ordered states compared with those in single-domain bulk materials. In particular, the DWs of an antiferromagnet with noncoplanar spin structure have a distinct symmetry that cannot be realized in those of their ferromagnet counterparts. In this paper, we show that an unconventional anomalous Hall effect (AHE) can arise from the DWs of a noncoplanar antiferromagnet, $\mathrm{N}{\mathrm{d}}_{2}\mathrm{I}{\mathrm{r}}_{2}{\mathrm{O}}_{7}$.

Condensed Matter PhysicsPhysics and Astronomy
10
Article|30 citations·2021
Topological guided‐mode resonances at non‐Hermitian nanophotonic interfaces
Ki Young Lee, Kwang Wook Yoo, Young‐Sun Choi, Gunpyo Kim, Sangmo Cheon, Jae Woong Yoon, Seok Ho Song
SJR Q1NanophotonicsOA

Abstract The topological properties of photonic microstructures are of great interest because of their experimental feasibility for fundamental study and potential applications. Here, we show that robust guided‐mode‐resonance states exist in photonic domain‐wall structures whenever the complex photonic band structures involve certain topological correlations in general. Using the non‐Hermitian photonic analogy of the one‐dimensional Dirac equation, we derive essential conditions for photonic Jac

Electrical and Electronic EngineeringEngineering
11
Preprint|23 citations·2011
Holography of mass-deformed M2-branes
Sangmo Cheon, Hee‐Cheol Kim, Seok Kim
arXiv (Cornell University)OA

We find and study the gravity duals of the supersymmetric vacua of N=6 mass-deformed Chern-Simons-matter theory for M2-branes. The classical solution extends that of Lin, Lunin and Maldacena by introducing a Z_k quotient and discrete torsions. The gravity vacua perfectly map to the recently identified supersymmetric field theory vacua. We calculate the masses of BPS charged particles in the weakly coupled field theory, which agree with the classical open membrane analysis when both calculations

Nuclear and High Energy PhysicsPhysics and Astronomy
12
Article|12 citations·2012
Duality between N=5 and N=6 Chern-Simons matter theory
Sangmo Cheon, Dongmin Gang, Chiung Hwang, Satoshi Nagaoka, Jaemo Park
SJR Q1Journal of High Energy PhysicsOA
Nuclear and High Energy PhysicsPhysics and Astronomy
13
Article|11 citations·2021
Particle-antiparticle duality and fractionalization of topological chiral solitons
Chang-geun Oh, Sang Hoon Han, Seung-Gyo Jeong, Tae-Hwan Kim, Sangmo Cheon
SJR Q1Scientific ReportsOA

Although a prototypical Su-Schrieffer-Heeger (SSH) soliton exhibits various important topological concepts including particle-antiparticle (PA) symmetry and fractional fermion charges, there have been only few advances in exploring such properties of topological solitons beyond the SSH model. Here, by considering a chirally extended double-Peierls-chain model, we demonstrate novel PA duality and fractional charge e/2 of topological chiral solitons even under the chiral symmetry breaking. This pr

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Article|5 citations·2021
Emergence of topological superconductivity in doped topological Dirac semimetals under symmetry-lowering lattice distortions
Sangmo Cheon, Ki Hoon Lee, Suk Bum Chung, Bohm‐Jung Yang
SJR Q1Scientific ReportsOA

Recently, unconventional superconductivity having a zero-bias conductance peak is reported in doped topological Dirac semimetal (DSM) with lattice distortion. Motivated by the experiments, we theoretically study the possible symmetry-lowering lattice distortions and their effects on the emergence of unconventional superconductivity in doped topological DSM. We find four types of symmetry-lowering lattice distortions that reproduce the crystal symmetries relevant to experiments from the group-the

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|3 citations·2021
Symmetry-protected solitons and bulk-boundary correspondence in generalized Jackiw–Rebbi models
Chang‐geun Oh, Sang‐Hoon Han, Sangmo Cheon
SJR Q1Scientific ReportsOA

We investigate the roles of symmetry and bulk-boundary correspondence in characterizing topological edge states in generalized Jackiw-Rebbi (JR) models. We show that time-reversal (T), charge-conjugation (C), parity (P), and discrete internal field rotation ([Formula: see text]) symmetries protect and characterize the various types of edge states such as chiral and nonchiral solitons via bulk-boundary correspondence in the presence of the multiple vacua. As two representative models, we consider

Condensed Matter PhysicsPhysics and Astronomy

Research Areas

Atomic and Molecular Physics, and OpticsMaterials ChemistryCondensed Matter PhysicsNuclear and High Energy PhysicsStatistical and Nonlinear PhysicsBiomedical Engineering

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