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Se‐Ho Kim

Korea University · Energy

About the Lab

Professor Se-Ho Kim's research focuses on experimental particle physics, particularly in the study of quantum chromodynamics (QCD) and the properties of the quark-gluon plasma formed in heavy-ion collisions. His work centers on data analysis from the ALICE experiment at CERN's Large Hadron Collider, investigating phenomena such as elliptic flow and particle production in Pb-Pb and proton-nucleus collisions at high energies. He also contributes to top quark discovery and Higgs boson mass measurements, leveraging advanced detector techniques and statistical analysis in high-energy physics.

heavy-ion collisionsquark-gluon plasmaelliptic flowHiggs bosontop quark

Research Overview

Papers
4
Total Citations
0
Papers (5y)
4
Primary Field
Energy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
4total
2025
2026
Citations per year (5y)
0total
20252026

Selected Papers

4
1
Article|0 citations·2026
Is Lithium Stabilization a Hidden Parameter in the Chemical Exfoliation of Metallic MoS 2 ?
Mathias Krämer, Yongqiang Kang, J. Manoj Prabhakar, Andrea M. Mingers, Arulkumar Ganapathi, Petra Ebbinghaus, Se-Ho Kim, Yug Joshi, Baptiste Gault
SJR Q1ACS Applied Materials & InterfacesOA

High Resolution Image Download MS PowerPoint Slide MoS 2 nanomaterials have been identified as a cost-effective and earth-abundant alternative to platinum-group metals for electrocatalytic hydrogen evolution. Chemical exfoliation of bulk semiconducting 2H-MoS 2 by lithium intercalation is widely employed to synthesize metallic 1T-MoS 2 nanosheets with enhanced basal plane activity and improved charge transport. While the catalytic benefits of this phase transition are well established, the mecha

Renewable Energy, Sustainability and the EnvironmentEnergy
2
Article|0 citations·2025
전계 이온 현미경을 다시 위대하게
이창기, 이원형, 김세호
http://doi.org/10.31613/ceramist.2025.00015

“Ja atoms! Ja atoms!” shouted Erwin Müller upon first observing individual atoms using Field ion microscopy (FIM), a landmark in atomic-scale imaging. Since then, FIM has profoundly impacted materials science, offering unmatched atomic resolution through electric-field-induced ionization. This review systematically explores FIM’s theoretical foundations, historical evolution, and instrumental developments. Despite modern imaging methods, FIM uniquely reveals atomic surface dynamics, arrangements

3
Article|0 citations·2025
원자 탐침 현미경의 기술 발전과 전망
유보령, 김세호
http://doi.org/10.31613/ceramist.2025.00220

Atom probe tomography (APT) has emerged as a powerful analytical technique capable of reconstructing three-dimensional compositional and structural information at the atomic scale. This paper provides a comprehensive review of the historical development of APT, structured around four key stages: Field emission microscopy, Field Ion Microscopy, Field Desorption Microscopy, and the eventual advent of APT. Foundational work by Erwin Müller laid the groundwork for APT through innovations in electron

4
Article|0 citations·2026
수소 직접환원 철광석의 다중 스케일 미세구조 분석
이원형, 정두효, 조모현, 이창기, 김세호
http://doi.org/10.31613/ceramist.2026.00101

Hydrogen-based iron reduction is often described as a cleaner process, but real ores behave heterogeneously across multiple length scales. Bulk measurements alone cannot capture how atoms move, where oxygen remains, or how impurities redistribute. Here, we discuss several approaches that can be used to study ore chemistry using microscopy, resolving nanoscale features such as sharp oxide-metal interfaces, near-complete local metallization, and retained impurity-rich domains. Complementary techni

Research Areas

Renewable Energy, Sustainability and the Environment

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