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Feng Ding

Ulsan National Institute of Science and Technology · Materials Science

About the Lab

Professor Feng Ding's research lab specializes in the theoretical and computational investigation of 2D materials and carbon-based nanomaterials, with a focus on understanding the fundamental mechanisms governing their nucleation, growth, and stability. The lab employs advanced first-principles calculations, molecular dynamics simulations, and density functional theory to explore the role of catalysts, surface interactions, and edge chemistry in determining the structure and properties of materials such as graphene, bilayer graphene, and carbon nanotubes. Key research directions include the kinetic control of nanotube growth via dislocation dynamics, the role of hydrogen in CVD growth processes, and the epitaxial growth of 2D materials on substrates with symmetry-matching principles. The lab’s work bridges atomic-scale mechanisms with macroscopic material synthesis, aiming to guide the rational design of high-performance nanomaterials for nanoelectronics and advanced technologies.

2D materialscarbon nanotubesgraphene growthfirst-principles calculationscatalyst dynamics

Research Overview

Papers
400
Total Citations
31,555
Papers (5y)
124
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
124total
2021
2022
2023
2024
2025
Citations per year (5y)
5,976total
20212022202320242025

Selected Papers

15
1
Article|637 citations·2019
Epitaxial growth of a 100-square-centimetre single-crystal hexagonal boron nitride monolayer on copper
Li Wang, Xiaozhi Xu, Leining Zhang, Ruixi Qiao, Muhong Wu, Zhichang Wang, Shuai Zhang, Jing Liang, Zhihong Zhang, Zhibin Zhang, Wang Chen, Xuedong Xie
SJR Q1NatureOA
Materials ChemistryMaterials Science
2
Article|614 citations·2015
Fast growth of inch-sized single-crystalline graphene from a controlled single nucleus on Cu–Ni alloys
Tianru Wu, Xuefu Zhang, Qinghong Yuan, Jiachen Xue, Guangyuan Lu, Zhihong Liu, Huishan Wang, Haomin Wang, Feng Ding, Qingkai Yu, Xiaoming Xie, Mianheng Jiang
SJR Q1Nature Materials
Materials ChemistryMaterials Science
3
Article|408 citations·2016
Ultrafast growth of single-crystal graphene assisted by a continuous oxygen supply
Xiaozhi Xu, Zhihong Zhang, Lu Qiu, Jianing Zhuang, Liang Zhang, Huan Wang, Chongnan Liao, Huading Song, Ruixi Qiao, Peng Gao, Zonghai Hu, Lei Liao
SJR Q1Nature Nanotechnology
Materials ChemistryMaterials Science
4
Article|373 citations·2021
Dual-coupling-guided epitaxial growth of wafer-scale single-crystal WS2 monolayer on vicinal a-plane sapphire
Jinhuan Wang, Xiaozhi Xu, Ting Cheng, Lehua Gu, Ruixi Qiao, Zhihua Liang, Dongdong Ding, Hao Hong, Peiming Zheng, Zhibin Zhang, Zhihong Zhang, Shuai Zhang
SJR Q1Nature Nanotechnology
Materials ChemistryMaterials Science
5
Article|346 citations·2009
Dislocation theory of chirality-controlled nanotube growth
Feng Ding, Avetik R. Harutyunyan, Boris I. Yakobson
SJR Q1Proceedings of the National Academy of SciencesOA

The periodic makeup of carbon nanotubes suggests that their formation should obey the principles established for crystals. Nevertheless, this important connection remained elusive for decades and no theoretical regularities in the rates and product type distribution have been found. Here we contend that any nanotube can be viewed as having a screw dislocation along the axis. Consequently, its growth rate is shown to be proportional to the Burgers vector of such dislocation and therefore to the c

Materials ChemistryMaterials Science
6
Article|318 citations·2007
The Importance of Strong Carbon−Metal Adhesion for Catalytic Nucleation of Single-Walled Carbon Nanotubes
Feng Ding, Peter Larsson, J. Andreas Larsson, Rajeev Ahuja, Haiming Duan, Arne Rosén, Kim Bolton
SJR Q1Nano Letters

Density functional theory is used to show that the adhesion between single-walled carbon nanotubes (SWNTs) and the catalyst particles from which they grow needs to be strong to support nanotube growth. It is found that Fe, Co, and Ni, commonly used to catalyze SWNT growth, have larger adhesion strengths to SWNTs than Cu, Pd, and Au and are therefore likely to be more efficient for supporting growth. The calculations also show that to maintain an open end of the SWNT it is necessary that the SWNT

Materials ChemistryMaterials Science
7
Article|286 citations·2014
Role of Hydrogen in Graphene Chemical Vapor Deposition Growth on a Copper Surface
Xiuyun Zhang, Lu Wang, John H. Xin, Boris I. Yakobson, Feng Ding
SJR Q1Journal of the American Chemical Society

Synthesizing bilayer graphene (BLG), which has a band gap, is an important step in graphene application in microelectronics. Experimentally, it was broadly observed that hydrogen plays a crucial role in graphene chemical vapor deposition (CVD) growth on a copper surface. Here, by using ab initio calculations, we have revealed a crucial role of hydrogen in graphene CVD growth, terminating the graphene edges. Our study demonstrates the following. (i) At a low hydrogen pressure, the graphene edges

Materials ChemistryMaterials Science
8
Article|275 citations·2020
The epitaxy of 2D materials growth
Jichen Dong, Leining Zhang, Xinyue Dai, Feng Ding
SJR Q1Nature CommunicationsOA

Two dimensional (2D) materials consist of one to a few atomic layers, where the intra-layer atoms are chemically bonded and the atomic layers are weakly bonded. The high bonding anisotropicity in 2D materials make their growth on a substrate substantially different from the conventional thin film growth. Here, we proposed a general theoretical framework for the epitaxial growth of a 2D material on an arbitrary substrate. Our extensive density functional theory (DFT) calculations show that the pr

Materials ChemistryMaterials Science
9
Article|261 citations·2022
Epitaxial single-crystal hexagonal boron nitride multilayers on Ni (111)
Kyung Yeol, Leining Zhang, Sunghwan Jin, Yan Wang, Seong In Yoon, Hyun-Tae Hwang, Juseung Oh, Da Sol Jeong, Meihui Wang, Shahana Chatterjee, Gwangwoo Kim, A‐Rang Jang
SJR Q1NatureOA
Materials ChemistryMaterials Science
10
Article|244 citations·2004
Nucleation and Growth of Single-Walled Carbon Nanotubes: A Molecular Dynamics Study
Feng Ding, Kim Bolton, Arne Rosén
SJR Q1The Journal of Physical Chemistry B

Molecular dynamics simulations based on an empirical potential energy surface were used to study iron catalyzed nucleation and growth of single-walled carbon nanotubes (SWNTs). The simulations show that SWNTs grow from iron-carbide particles at temperatures between 800 and 1400 K, whereas graphene sheets encapsulate the particle at temperatures below 600 K and a three-dimensional soot-like structure is formed above 1600 K. Nucleation of these carbon (C) structures can be divided into three stage

Materials ChemistryMaterials Science
11
Article|232 citations·2012
Recent Progress and Challenges in Graphene Nanoribbon Synthesis
Liang Ma, Jinlan Wang, Feng Ding
SJR Q2ChemPhysChemOA

Graphene, the thinnest two-dimensional material in nature, has abundant distinctive properties, such as ultrahigh carrier mobility, superior thermal conductivity, very high surface-to-volume ratio, anomalous quantum Hall effect, and so on. Laterally confined, thin, and long strips of graphene, namely, graphene nanoribbons (GNRs), can open the bandgap in the semimetal and give it the potential to replace silicon in future electronics. Great efforts are devoted to achieving high-quality GNRs with

Materials ChemistryMaterials Science
12
Review|229 citations·2021
Strategies, Status, and Challenges in Wafer Scale Single Crystalline Two-Dimensional Materials Synthesis
Leining Zhang, Jichen Dong, Feng Ding
SJR Q1Chemical Reviews

The successful exfoliation of graphene has given a tremendous boost to research on various two-dimensional (2D) materials in the last 15 years. Different from traditional thin films, a 2D material is composed of one to a few atomic layers. While atoms within a layer are chemically bonded, interactions between layers are generally weak van der Waals (vdW) interactions. Due to their particular dimensionality, 2D materials exhibit special electronic, magnetic, mechanical, and thermal properties, no

Materials ChemistryMaterials Science
13
Article|217 citations·2020
Seeded growth of large single-crystal copper foils with high-index facets
Muhong Wu, Zhibin Zhang, Xiaozhi Xu, Zhihong Zhang, Yunrui Duan, Jichen Dong, Ruixi Qiao, Sifan You, Li Wang, Jiajie Qi, Dingxin Zou, Nianze Shang
SJR Q1Nature
Materials ChemistryMaterials Science
14
Article|203 citations·2012
Edge Structural Stability and Kinetics of Graphene Chemical Vapor Deposition Growth
Haibo Shu, Xiaoshuang Chen, Xiaoming Tao, Feng Ding
SJR Q1ACS Nano

The energetics and growth kinetics of graphene edges during CVD growth on Cu(111) and other catalyst surfaces are explored by density functional theory (DFT) calculations. Different from graphene edges in vacuum, the reconstructions of both armchair (AC) and zigzag (ZZ) edges are energetically less stable because of the passivation of the edges by the catalytic surface. Furthermore, we predicated that, on the most used Cu(111) catalytic surface, each AC-like site on the edge is intended to be pa

Materials ChemistryMaterials Science
15
Article|198 citations·2017
Greatly Enhanced Anticorrosion of Cu by Commensurate Graphene Coating
Xiaozhi Xu, Yi Ding, Zhichang Wang, Jiachen Yu, Zhihong Zhang, Ruixi Qiao, Zhanghao Sun, Zonghai Hu, Peng Gao, Hailin Peng, Zhongfan Liu, Dapeng Yu
SJR Q1Advanced Materials

Abstract Metal corrosion is a long‐lasting problem in history and ultrahigh anticorrosion is one ultimate pursuit in the metal‐related industry. Graphene, in principle, can be a revolutionary material for anticorrosion due to its excellent impermeability to any molecule or ion (except for protons). However, in real applications, it is found that the metallic graphene forms an electrochemical circuit with the protected metals to accelerate the corrosion once the corrosive fluids leaks into the in

Materials ChemistryMaterials Science

Research Areas

Materials ChemistryElectrical and Electronic EngineeringRenewable Energy, Sustainability and the EnvironmentAtmospheric ScienceAtomic and Molecular Physics, and OpticsMechanical Engineering

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