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Gil-Ho Eom

Sungkyunkwan University · Physics and Astronomy

About the Lab

Professor Gil-Ho Eom's research lab specializes in the mechanical characterization and simulation of biomolecular and nanomaterial systems, with a focus on understanding the structure-property relationships in amyloid fibrils, graphene-based nanomechanical systems, and protein-ligand interactions at the nanoscale. The lab employs advanced scanning probe microscopy techniques—such as AFM, KPFM, and nanoindentation—to probe mechanical properties and surface potential changes at the single-molecule level. Key research directions include the nonlinear dynamics of 2D nanomaterials like graphene resonators, the size-dependent mechanical behavior of nanowires and fibrils, and the role of self-assembly in determining mechanical robustness in disease-related proteins. The lab combines experimental nanomechanics with atomistic and continuum modeling to uncover fundamental principles governing nanoscale mechanical functions in biological and nanomaterial systems.

nanomechanicsamyloid fibrilsgraphene resonatorssingle-molecule imagingscanning probe microscopy

Research Overview

Papers
115
Total Citations
2,574
Papers (5y)
9
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
9total
2021
2023
2024
2025
2026
Citations per year (5y)
45total
20212023202420252026

Selected Papers

15
1
Article|457 citations·2011
Nanomechanical resonators and their applications in biological/chemical detection: Nanomechanics principles
Kilho Eom, Harold S. Park, Dae Sung Yoon, Taeyun Kwon
SJR Q1Physics ReportsOA
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|115 citations·2009
Mechanical Properties of Silicon Nanowires
Young-Soo Sohn, Jinsung Park, Gwonchan Yoon, Jiseok Song, Sang‐Won Jee, Jung‐Ho Lee, Sungsoo Na, Taeyun Kwon, Kilho Eom
SJR Q1Nanoscale Research LettersOA

Nanowires have been taken much attention as a nanoscale building block, which can perform the excellent mechanical function as an electromechanical device. Here, we have performed atomic force microscope (AFM)-based nanoindentation experiments of silicon nanowires in order to investigate the mechanical properties of silicon nanowires. It is shown that stiffness of nanowires is well described by Hertz theory and that elastic modulus of silicon nanowires with various diameters from ~100 to ~600 nm

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
3
Article|65 citations·2011
Single-Molecule Recognition of Biomolecular Interaction via Kelvin Probe Force Microscopy
Jinsung Park, Jaemoon Yang, Gyudo Lee, Chang Young Lee, Sungsoo Na, Sang Woo Lee, Seungjoo Haam, Yong‐Min Huh, Dae Sung Yoon, Kilho Eom, Taeyun Kwon
SJR Q1ACS NanoOA

We report the scanning probe microscope (SPM)-based single-molecule recognition of biomolecular interactions between protein kinase and small ligands (i.e., ATP and Imatinib). In general, it is difficult to sense and detect the small ligands bound to protein kinase (at single-molecule resolution) using a conventional atomic force microscope (AFM) due to the limited resolution of conventional AFM for detecting the miniscule changes in molecular size driven by ligand binding. In this study, we hav

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|65 citations·2012
Nonlinear vibration behavior of graphene resonators and their applications in sensitive mass detection
Mai Duc Dai, Chang‐Wan Kim, Kilho Eom
SJR Q1Nanoscale Research LettersOA

Graphene has received significant attention due to its excellent mechanical properties, which has resulted in the emergence of graphene-based nano-electro-mechanical system such as nanoresonators. The nonlinear vibration of a graphene resonator and its application to mass sensing (based on nonlinear oscillation) have been poorly studied, although a graphene resonator is able to easily reach the nonlinear vibration. In this work, we have studied the nonlinear vibration of a graphene resonator dri

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|64 citations·2011
Mechanical Characterization of Amyloid Fibrils Using Coarse‐Grained Normal Mode Analysis
Gwonchan Yoon, Jinhak Kwak, Jae In Kim, Sungsoo Na, Kilho Eom
SJR Q1Advanced Functional Materials

Abstract Recent experimental studies have shown that amyloid fibril formed by aggregation of β peptide exhibits excellent mechanical properties comparable to other protein materials such as actin filaments and microtubules. These excellent mechanical properties of amyloid fibrils are related to their functional role in disease expression. This indicates the necessity of understanding how an amyloid fibril achieves the remarkable mechanical properties through self‐aggregation with structural hier

BiomaterialsMaterials Science
6
Article|55 citations·2014
Role of Sequence and Structural Polymorphism on the Mechanical Properties of Amyloid Fibrils
Gwonchan Yoon, Myeongsang Lee, Jae In Kim, Sungsoo Na, Kilho Eom
SJR Q1PLoS ONEOA

Amyloid fibrils playing a critical role in disease expression, have recently been found to exhibit the excellent mechanical properties such as elastic modulus in the order of 10 GPa, which is comparable to that of other mechanical proteins such as microtubule, actin filament, and spider silk. These remarkable mechanical properties of amyloid fibrils are correlated with their functional role in disease expression. This suggests the importance in understanding how these excellent mechanical proper

BiomaterialsMaterials Science
7
Article|47 citations·2014
Mechanical deformation mechanisms and properties of amyloid fibrils
Bumjoon Choi, Gwonchan Yoon, Sang Woo Lee, Kilho Eom
SJR Q2Physical Chemistry Chemical Physics

Amyloid fibrils have recently received attention due to their remarkable mechanical properties, which are highly correlated with their biological functions. We have studied the mechanical deformation mechanisms and properties of amyloid fibrils as a function of their length scales by using atomistic simulations. It is shown that the length of amyloid fibrils plays a role in their deformation and fracture mechanisms in such a way that the competition between shear and bending deformations is high

BiomaterialsMaterials Science
8
Article|46 citations·2003
Relationship between the Mechanical Properties and Topology of Cross-Linked Polymer Molecules: Parallel Strands Maximize the Strength of Model Polymers and Protein Domains
Kilho Eom, Pai-Chi Li, Dmitrii E. Makarov, Gregory J. Rodin
SJR Q1The Journal of Physical Chemistry B

Proteins that perform mechanical functions in living organisms often exhibit exceptionally high strength and elasticity. Recent studies of the unfolding of single protein molecules under mechanical loading showed that their strength is mostly determined by their native topology rather than by thermodynamic stability. To identify the topologies of polymer molecules that maximize their resistance to unfolding, we have simulated the response of cross-linked polymer chains under tensile loading and

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
9
Article|46 citations·2018
Metal ions affect the formation and stability of amyloid β aggregates at multiple length scales
Myeongsang Lee, Jae Kim, Sungsoo Na, Kilho Eom
SJR Q2Physical Chemistry Chemical Physics

Amyloid β (Aβ) aggregates, which are a hallmark for neurodegenerative disease, are formed through a self-assembly process such as aggregation of Aβ peptide chains. This aggregation process depends on the solvent conditions under which the proteins are aggregated. Nevertheless, the underlying mechanism of the ionic effect on the formation and stability of amyloid aggregates has not been fully understood. Here, we report how metal ions play a role in the formation and stability of Aβ aggregates at

PhysiologyMedicine
10
Review|42 citations·2019
Atomic force microscopy-based cancer diagnosis by detecting cancer-specific biomolecules and cells
Taeyun Kwon, Sundaram Gunasekaran, Kilho Eom
SJR Q1Biochimica et Biophysica Acta (BBA) - Reviews on Cancer
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|41 citations·2007
Dynamical response of nanomechanical resonators to biomolecular interactions
Kilho Eom, Tae Yun Kwon, Dae Sung Yoon, Hong Lim Lee, Tae Song Kim
SJR Q1Physical Review BOA

We studied the dynamical response of a nanomechanical resonator to biomolecular (e.g., DNA) adsorptions on a resonator's surface by using theoretical model, which considers the Hamiltonian $H$ such that the potential energy consists of elastic bending energy of a resonator and the potential energy for biomolecular interactions. It was shown that the resonant frequency shift for a resonator due to biomolecular adsorption depends on not only the mass of adsorbed biomolecules but also the biomolecu

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
12
Article|40 citations·2007
Coarse‐graining of protein structures for the normal mode studies
Kilho Eom, Seung‐Chul Baek, Jung‐Hee Ahn, Sungsoo Na
SJR Q1Journal of Computational Chemistry

The coarse-grained structural model such as Gaussian network has played a vital role in the normal mode studies for understanding protein dynamics related to biological functions. However, for the large proteins, the Gaussian network model is computationally unfavorable for diagonalization of Hessian (stiffness) matrix for the normal mode studies. In this article, we provide the coarse-graining method, referred to as "dynamic model condensation," which enables the further coarse-graining of prot

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|36 citations·2005
Theoretical studies of the kinetics of mechanical unfolding of cross-linked polymer chains and their implications for single-molecule pulling experiments
Kilho Eom, Dmitrii E. Makarov, Gregory J. Rodin
SJR Q2Physical Review EOA

We have used kinetic Monte Carlo simulations to study the kinetics of unfolding of cross-linked polymer chains under mechanical loading. As the ends of a chain are pulled apart, the force transmitted by each cross-link increases until it ruptures. The stochastic cross-link rupture process is assumed to be governed by first order kinetics with a rate that depends exponentially on the transmitted force. We have performed random searches to identify optimal cross-link configurations whose unfolding

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Article|32 citations·2021
Different Aggregation Pathways and Structures for Aβ40 and Aβ42 Peptides
Li Wang, Kilho Eom, Taeyun Kwon
SJR Q1BiomoleculesOA

Self-aggregation of amyloid-β (Aβ) peptides has been known to play a vital role in the onset stage of neurodegenerative diseases, indicating the necessity of understanding the aggregation process of Aβ peptides. Despite previous studies on the aggregation process of Aβ peptides, the aggregation pathways of Aβ isoforms (i.e., Aβ40 and Aβ42) and their related structures have not been fully understood yet. Here, we study the aggregation pathways of Aβ40 and Aβ42, and the structures of Aβ40 and Aβ42

PhysiologyMedicine
15
Article|28 citations·2017
Nature-Inspired Construction of Two-Dimensionally Self-Assembled Peptide on Pristine Graphene
Young Hyun No, Nam Hyeong Kim, Bramaramba Gnapareddy, Bumjoon Choi, YongTae Kim, Sreekantha Reddy Dugasani, One‐Sun Lee, Kook-Han Kim, Young‐Seon Ko, Seungwoo Lee, Sang Woo Lee, Sung Ha Park
SJR Q1The Journal of Physical Chemistry Letters

Peptide assemblies have received significant attention because of their important role in biology and applications in bionanotechnology. Despite recent efforts to elucidate the principles of peptide self-assembly for developing novel functional devices, peptide self-assembly on two-dimensional nanomaterials has remained challenging. Here, we report nature-inspired two-dimensional peptide self-assembly on pristine graphene via optimization of peptide–peptide and peptide–graphene interactions. Two

BiomaterialsMaterials Science

Research Areas

Atomic and Molecular Physics, and OpticsMolecular BiologyBiomaterialsBiomedical EngineeringPhysiologyMaterials Chemistry

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