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Suksoo Son

Korea University · Engineering

About the Lab

Professor Suksoo Son's research lab specializes in the design and mechanical characterization of high-entropy and medium-entropy alloys, with a focus on achieving exceptional strength-ductility synergy through microstructural engineering. The lab explores advanced strengthening mechanisms such as severe lattice distortion, deformation twinning, martensitic transformations, and shear band-driven nano-precipitation. Key research directions include phase stability control, grain boundary engineering, and transformation-induced plasticity to develop next-generation structural materials for extreme environments.

medium-entropy alloysmartensitic transformationdeformation twinninggrain boundary strengtheningmechanical properties

Research Overview

Papers
257
Total Citations
9,573
Papers (5y)
127
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
127total
2022
2023
2024
2025
2026
Citations per year (5y)
1,292total
20222023202420252026

Selected Papers

15
1
Article|585 citations·2018
Ultrastrong Medium‐Entropy Single‐Phase Alloys Designed via Severe Lattice Distortion
Seok Su Sohn, Alisson Kwiatkowski da Silva, Yuji Ikeda, Fritz Körmann, Wenjun Lu, Won Seok Choi, Baptiste Gault, Dirk Ponge, Jörg Neugebauer, Dierk Raabe
SJR Q1Advanced MaterialsOA

Severe lattice distortion is a core effect in the design of multiprincipal element alloys with the aim to enhance yield strength, a key indicator in structural engineering. Yet, the yield strength values of medium- and high-entropy alloys investigated so far do not substantially exceed those of conventional alloys owing to the insufficient utilization of lattice distortion. Here it is shown that a simple VCoNi equiatomic medium-entropy alloy exhibits a near 1 GPa yield strength and good ductilit

Mechanical EngineeringEngineering
2
Article|459 citations·2017
Cryogenic strength improvement by utilizing room-temperature deformation twinning in a partially recrystallized VCrMnFeCoNi high-entropy alloy
Yong Hee Jo, Sung Yong Jung, Wookjin Choi, Seok Su Sohn, Hyoung Seop Kim, Byeong‐Joo Lee, Nack J. Kim, Sanghan Lee
SJR Q1Nature CommunicationsOA

The excellent cryogenic tensile properties of the CrMnFeCoNi alloy are generally caused by deformation twinning, which is difficult to achieve at room temperature because of insufficient stress for twinning. Here, we induced twinning at room temperature to improve the cryogenic tensile properties of the CrMnFeCoNi alloy. Considering grain size effects on the critical stress for twinning, twins were readily formed in the coarse microstructure by cold rolling without grain refinement by hot rollin

Mechanical EngineeringEngineering
3
Article|300 citations·2015
Effects of Mn and Al contents on cryogenic-temperature tensile and Charpy impact properties in four austenitic high-Mn steels
Seok Su Sohn, Seokmin Hong, Junghoon Lee, Byeong‐Chan Suh, Sung-Kyu Kim, Byeong‐Joo Lee, Nack J. Kim, Sunghak Lee
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
4
Article|206 citations·2021
Shear band-driven precipitate dispersion for ultrastrong ductile medium-entropy alloys
Tae Jin Jang, Won Seok Choi, Dae Woong Kim, Gwanghyo Choi, Hosun Jun, Alberto Ferrari, Fritz Körmann, Pyuck‐Pa Choi, Seok Su Sohn
SJR Q1Nature CommunicationsOA

Abstract Precipitation strengthening has been the basis of physical metallurgy since more than 100 years owing to its excellent strengthening effects. This approach generally employs coherent and nano-sized precipitates, as incoherent precipitates energetically become coarse due to their incompatibility with matrix and provide a negligible strengthening effect or even cause brittleness. Here we propose a shear band-driven dispersion of nano-sized and semicoherent precipitates, which show signifi

Mechanical EngineeringEngineering
5
Article|201 citations·2015
Novel ultra-high-strength (ferrite + austenite) duplex lightweight steels achieved by fine dislocation substructures (Taylor lattices), grain refinement, and partial recrystallization
Seok Su Sohn, Hyejin Song, Byeong‐Chan Suh, Jai Hyun Kwak, Byeong‐Joo Lee, Nack J. Kim, Sunghak Lee
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
6
Article|186 citations·2014
Novel ferrite–austenite duplex lightweight steel with 77% ductility by transformation induced plasticity and twinning induced plasticity mechanisms
Seok Su Sohn, Kayoung Choi, Jai‐Hyun Kwak, Nack J. Kim, Sunghak Lee
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
7
Article|171 citations·2018
Novel medium-Mn (austenite + martensite) duplex hot-rolled steel achieving 1.6 GPa strength with 20 % ductility by Mn-segregation-induced TRIP mechanism
Hyungsoo Lee, Min Chul Jo, Seok Su Sohn, Alireza Zargaran, Joo Hyun Ryu, Nack J. Kim, Sunghak Lee
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
8
Article|158 citations·2017
Novel ultra-high-strength Cu-containing medium-Mn duplex lightweight steels
Hyejin Song, Jisung Yoo, Sang‐Heon Kim, Seok Su Sohn, Minseo Koo, Nack J. Kim, Sunghak Lee
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
9
Article|140 citations·2013
Effect of annealing temperature on microstructural modification and tensile properties in 0.35 C–3.5 Mn–5.8 Al lightweight steel
Seok Su Sohn, Byeong‐Joo Lee, Sanghan Lee, Nack J. Kim, Jai‐Hyun Kwak
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
10
Article|130 citations·2019
FCC to BCC transformation-induced plasticity based on thermodynamic phase stability in novel V10Cr10Fe45CoxNi35−x medium-entropy alloys
Yong Hee Jo, Wookjin Choi, D. G. Kim, Alireza Zargaran, Seok Su Sohn, Hyoung Seop Kim, Byeong‐Joo Lee, Nack J. Kim, Sanghan Lee
SJR Q1Scientific ReportsOA

We introduce a novel transformation-induced plasticity mechanism, i.e., a martensitic transformation from fcc phase to bcc phase, in medium-entropy alloys (MEAs). A VCrFeCoNi MEA system is designed by thermodynamic calculations in consideration of phase stability between bcc and fcc phases. The resultantly formed bcc martensite favorably contributes to the transformation-induced plasticity, thereby leading to a significant enhancement in both strength and ductility as well as strain hardening. W

Mechanical EngineeringEngineering
11
Article|126 citations·2019
Ultrastrong duplex high-entropy alloy with 2 GPa cryogenic strength enabled by an accelerated martensitic transformation
Donggeun Kim, Yong Hee Jo, Junha Yang, Won-Mi Choi, Hyoung Seop Kim, Byeong‐Joo Lee, Seok Su Sohn, Sunghak Lee
SJR Q1Scripta Materialia
Mechanical EngineeringEngineering
12
Article|124 citations·2021
Effects of solid solution and grain-boundary segregation of Mo on hydrogen embrittlement in 32MnB5 hot-stamping steels
Jisung Yoo, Min Chul Jo, Min Cheol Jo, Seongwoo Kim, Sang‐Heon Kim, Jinkeun Oh, Seok Su Sohn, Sunghak Lee
SJR Q1Acta Materialia
Metals and AlloysMaterials Science
13
Article|116 citations·2020
High-rate superplasticity in an equiatomic medium-entropy VCoNi alloy enabled through dynamic recrystallization of a duplex microstructure of ordered phases
Seok Su Sohn, Dong Geun Kim, Yong Hee Jo, Alisson Kwiatkowski da Silva, Wenjun Lu, Andrew Breen, Baptiste Gault, Dirk Ponge
SJR Q1Acta Materialia
Mechanical EngineeringEngineering
14
Article|114 citations·2018
Utilization of brittle σ phase for strengthening and strain hardening in ductile VCrFeNi high-entropy alloy
Yong Hee Jo, Won-Mi Choi, D.G. Kim, Alireza Zargaran, K. Lee, Hyokyung Sung, Seok Su Sohn, Hyoung Seop Kim, Byeong‐Joo Lee, Sanghan Lee
SJR Q1Materials Science and Engineering A
Mechanical EngineeringEngineering
15
Article|105 citations·2021
Effects of cryogenic temperature on tensile and impact properties in a medium-entropy VCoNi alloy
Dae Cheol Yang, Yong Hee Jo, Yuji Ikeda, Fritz Körmann, Seok Su Sohn
SJR Q1Journal of Material Science and TechnologyOA
Mechanical EngineeringEngineering

Research Areas

Mechanical EngineeringMaterials ChemistryMetals and AlloysMechanics of MaterialsAutomotive EngineeringAerospace Engineering

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