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Chong Seung Yoon

Hanyang University · 工学

研究室紹介

Professor Chong Seung Yoon's research lab specializes in the development and optimization of high-nickel layered oxide cathodes for lithium-ion batteries, with a focus on enhancing electrochemical performance, structural stability, and safety. The lab investigates fundamental degradation mechanisms—such as microcracking, phase transitions, and surface reactivity—through advanced in situ characterization and computational modeling. Key research directions include surface coating, dopant engineering (e.g., AlF₃, B, W), and microstructure control to improve cycle life and thermal stability in Ni-rich NCM and NCA cathodes.

nickel-rich cathodesmicrocrackingdopant engineeringsurface coatinglithium-ion batteries

Research Overview

Papers
416
Total Citations
31,400
Papers (5y)
36
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
36total
2021
2022
2023
2024
2025
Citations per year (5y)
3,563total
20212022202320242025

Selected Papers

15
1
Article|2,219 citations·2013
Comparison of the structural and electrochemical properties of layered Li[NixCoyMnz]O2 (x = 1/3, 0.5, 0.6, 0.7, 0.8 and 0.85) cathode material for lithium-ion batteries
Hyung‐Joo Noh, Sungjune Youn, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Journal of Power Sources
Electrical and Electronic EngineeringEngineering
2
Article|1,587 citations·2018
Capacity Fading of Ni-Rich Li[NixCoyMn1–x–y]O2 (0.6 ≤ x ≤ 0.95) Cathodes for High-Energy-Density Lithium-Ion Batteries: Bulk or Surface Degradation?
Hoon‐Hee Ryu, Kang-Joon Park, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Chemistry of Materials

Ni-rich Li[Ni x Co y Mn 1– x – y ]O 2 cathodes ( x = 0.6, 0.8, 0.9, and 0.95) were tested to characterize the capacity fading mechanism of extremely rich Ni compositions. Increasing the Ni fraction in the cathode delivered a higher discharge capacity (192.9 mA h g –1 for Li[Ni 0.6 Co 0.2 Mn 0.2 ]O 2 versus 235.0 mA h g –1 for Li[Ni 0.95 Co 0.025 Mn 0.025 ]O 2 ); however, the cycling stability was substantially reduced. Li[Ni 0.6 Co 0.2 Mn 0.2 ]O 2 and Li[Ni 0.8 Co 0.1 Mn 0.1 ]O 2 retained more t

Electrical and Electronic EngineeringEngineering
3
Article|691 citations·2012
The Role of AlF3 Coatings in Improving Electrochemical Cycling of Li‐Enriched Nickel‐Manganese Oxide Electrodes for Li‐Ion Batteries
Yang‐Kook Sun, Min‐Joon Lee, Chong Seung Yoon, Jusef Hassoun, Khalil Amine, Bruno Scrosati
SJR Q1Advanced Materials

A Li[Li(0.19)Ni(0.16)Co(0.08)Mn(0.57)]O(2) cathode was coated with AlF(3) on the surface. The AlF(3)-coating enhanced the overall electrochemical characteristics of the electrode while overcoming the typical shortcomings of lithium-enriched cathodes. This improvement was attributed to the transformation of the initial electrode layer to a spinel phase, induced by the Li chemical leaching effect of the AlF(3) coating layer.

Electrical and Electronic EngineeringEngineering
4
Article|600 citations·2021
Capacity Fading Mechanisms in Ni-Rich Single-Crystal NCM Cathodes
Hoon‐Hee Ryu, Been Namkoong, Jae-Hyung Kim, Ilias Belharouak, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1ACS Energy LettersOA

A series of single-crystal, Ni-rich Li[NixCoyMn1–x–y]O2 (NCM) cathodes (x = 0.7, 0.8, and 0.9) with particle diameters of ∼3 μm are systematically compared with polycrystalline cathodes with corresponding Ni contents. Despite their high resistance to microcracking, the electrochemical performances of single-crystal NCM cathodes, in terms of capacity and cycling stability, are inferior to those of polycrystalline NCM cathodes. In situ XRD and TEM analyses reveal that the lithium concentrations in

Electrical and Electronic EngineeringEngineering
5
Article|501 citations·2020
Heuristic solution for achieving long-term cycle stability for Ni-rich layered cathodes at full depth of discharge
Un‐Hyuck Kim, Geon‐Tae Park, Byoung-Ki Son, Gyeong Won Nam, Jun Liu, Liang‐Yin Kuo, Payam Kaghazchi, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Nature Energy
Electrical and Electronic EngineeringEngineering
6
Article|491 citations·2018
Improved Cycling Stability of Li[Ni0.90Co0.05Mn0.05]O2 Through Microstructure Modification by Boron Doping for Li‐Ion Batteries
Kang‐Joon Park, Hun‐Gi Jung, Liang‐Yin Kuo, Payam Kaghazchi, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Advanced Energy MaterialsOA

Abstract Boron‐doped Li[Ni 0.90 Co 0.05 Mn 0.05 ]O 2 cathodes are synthesized by adding B 2 O 3 during the lithiation of the hydroxide precursor. Density functional theory confirms that boron doping at a level as low as 1 mol% alters the surface energies to produce a highly textured microstructure that can partially relieve the intrinsic internal strain generated during the deep charging of Li[Ni 0.90 Co 0.05 Mn 0.05 ]O 2 . The 1 mol% B‐Li[Ni 0.90 Co 0.05 Mn 0.05 ]O 2 cathode thus delivers a dis

Electrical and Electronic EngineeringEngineering
7
Article|468 citations·2019
Capacity Fading of Ni-Rich NCA Cathodes: Effect of Microcracking Extent
Gyeong Won Nam, Nam-Yung Park, Kang-Joon Park, Jihui Yang, Jun Liu, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1ACS Energy Letters

Ni-rich Li[Ni1–x–yCoxAly]O2 (NCA) cathodes (1 – x – y = 0.8, 0.88, and 0.95) are synthesized to investigate the capacity fading mechanism of Ni-rich NCA cathodes. The capacity retention and thermal property of the cathodes deteriorate as their discharge capacity increases when the Ni fraction is increased. The capacity fading correlates well with the anisotropic volume variations caused by the H2–H3 phase transition and the resulting extent of microcracking. Although all three cathodes start to

Electrical and Electronic EngineeringEngineering
8
Article|433 citations·2018
Pushing the limit of layered transition metal oxide cathodes for high-energy density rechargeable Li ion batteries
Un‐Hyuck Kim, Dayoung Jun, Kwang-Kuen Park, Q. Zhang, Payam Kaghazchi, Doron Aurbach, Dan Thomas Major, Gil Goobes, Mudit Dixit, Nicole Leifer, C. M. Wang, Pengfei Yan
SJR Q1Energy & Environmental ScienceOA

W-doping produced the two-phase (<italic>Fm</italic>3̄<italic>m</italic> and <italic>R</italic>3̄<italic>m</italic>) structure which improved the cycling and thermal stability of the Ni-rich layered cathodes.

Electrical and Electronic EngineeringEngineering
9
Article|412 citations·2017
Structural Stability of LiNiO2 Cycled above 4.2 V
Chong Seung Yoon, Do-Wook Jun, Seung‐Taek Myung, Yang‐Kook Sun
SJR Q1ACS Energy Letters

A spherical stoichiometric LiNiO 2 particle, which was composed of compactly packed nanosized primary particles, was prepared and cycled at different cutoff voltages to explicitly demonstrate the effect of phase transitions during Li deintercalation/intercalation on the Li-ion intercalation stability of LiNiO 2 . The capacity retention was greatly improved by suppressing the H2 → H3 phase transition at 4.1 V, such that 95% of the initial capacity (164 mAh g –1 ) was retained after 100 cycles whe

Electrical and Electronic EngineeringEngineering
10
Article|393 citations·2019
Degradation Mechanism of Ni-Enriched NCA Cathode for Lithium Batteries: Are Microcracks Really Critical?
Kang-Joon Park, Jang‐Yeon Hwang, Hoon-Hee Ryu, Filippo Maglia, Sung‐Jin Kim, Peter Lamp, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1ACS Energy LettersOA

A series of Ni-enriched Li[NixCoyAlz]O2 cathodes (x = 0.80–0.95) were synthesized and evaluated comprehensively to investigate the capacity fading mechanism. Capacity retention was shown to be strongly related to the extent of microcracking within the secondary particles. Moreover, the range and limit of the depth of discharge (DOD), which determined the extent of microcracking, critically affected the cycling stability such that the extremely Ni-rich Li[Ni0.95Co0.04Al0.01]O2 cathode cycled at a

Electrical and Electronic EngineeringEngineering
11
Article|356 citations·2022
Introducing high-valence elements into cobalt-free layered cathodes for practical lithium-ion batteries
Geon‐Tae Park, Been Namkoong, Su-Bin Kim, Jun Liu, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Nature Energy
Electrical and Electronic EngineeringEngineering
12
Article|314 citations·2019
Quaternary Layered Ni-Rich NCMA Cathode for Lithium-Ion Batteries
Un‐Hyuck Kim, Liang‐Yin Kuo, Payam Kaghazchi, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1ACS Energy LettersOA

Li[Ni1–x–yCoxAly]O2 (NCA) and Li[Ni1–x–yCoxMny]O2 (NCM) cathodes have been the archetypes of current high-energy-density cathodes for Li-ion batteries. A hybrid of NCA and NCM cathodes, a quaternary system consisting of Li[Ni0.89Co0.05Mn0.05Al0.01]O2 (NCMA) was benchmarked against NCM and NCA with similar Ni contents. The quaternary NCMA cathode delivered a capacity of 228 mAh g–1 and outperformed the benchmarking cathodes in long-term cycling stability (85% after 1000 cycles). The reduction in

Electrical and Electronic EngineeringEngineering
13
Article|313 citations·2021
Reducing cobalt from lithium-ion batteries for the electric vehicle era
Hoon‐Hee Ryu, H. Hohyun Sun, Seung‐Taek Myung, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Energy & Environmental Science

This perspective discusses the challenges to, and strategies for, the commercially viable development of these three classes of cathodes for LIBs.

Electrical and Electronic EngineeringEngineering
14
Article|293 citations·2019
Microstructure‐Controlled Ni‐Rich Cathode Material by Microscale Compositional Partition for Next‐Generation Electric Vehicles
Un‐Hyuck Kim, Hoon‐Hee Ryu, Jae‐Hyung Kim, Robert Mücke, Payam Kaghazchi, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Advanced Energy Materials

Abstract A multicompositional particulate Li[Ni 0.9 Co 0.05 Mn 0.05 ]O 2 cathode in which Li[Ni 0.94 Co 0.038 Mn 0.022 ]O 2 at the particle center is encapsulated by a 1.5 µm thick concentration gradient (CG) shell with the outermost surface composition Li[Ni 0.841 Co 0.077 Mn 0.082 ]O 2 is synthesized using a differential coprecipitation process. The microscale compositional partitioning at the particle level combined with the radial texturing of the refined primary particles in the CG shell la

Electrical and Electronic EngineeringEngineering
15
Article|263 citations·2019
Cobalt‐Free High‐Capacity Ni‐Rich Layered Li[Ni0.9Mn0.1]O2 Cathode
Assylzat Aishova, Geon‐Tae Park, Chong Seung Yoon, Yang‐Kook Sun
SJR Q1Advanced Energy Materials

Abstract Li[Ni 0.9 Co 0.1 ]O 2 (NC90), Li[Ni 0.9 Co 0.05 Mn 0.05 ]O 2 (NCM90), and Li[Ni 0.9 Mn 0.1 ]O 2 (NM90) cathodes are synthesized for the development of a Co‐free high‐energy‐density cathode. NM90 maintains better cycling stability than the two Co‐containing cathodes, particularly under harsh cycling conditions (a discharge capacity of 236 mAh g −1 with a capacity retention of 88% when cycled at 4.4 V under 30 °C and 93% retention when cycled at 4.3 V under 60 °C after 100 cycles). The re

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryAtomic and Molecular Physics, and OpticsElectronic, Optical and Magnetic MaterialsMechanical EngineeringBiomedical Engineering

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