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Dive into the research topics where Seungjun Myeong is active.

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Featured researches published by Seungjun Myeong.


Nano Letters | 2014

Superior Long-Term Energy Retention and Volumetric Energy Density for Li-Rich Cathode Materials

Pilgun Oh; Seungjun Myeong; Woongrae Cho; Min-Joon Lee; Minseong Ko; Hu Young Jeong; Jaephil Cho

Li-rich materials are considered the most promising for Li-ion battery cathodes, as high energy densities can be achieved. However, because an activation method is lacking for large particles, small particles must be used with large surface areas, a critical drawback that leads to poor long-term energy retention and low volumetric energy densities. Here we propose a new material engineering concept to overcome these difficulties. Our material is designed with 10 μm-sized secondary particles composed of submicron scaled flake-shaped primary particles that decrease the surface area without sacrificing rate capability. A novel activation method then overcomes the previous limits of Li-rich materials with large particles. As a result, we attained high average voltage and capacity retention in turn yielding excellent energy retention of 93% during 600 cycles. This novel and unique approach may furthermore open the door to new material engineering methods for high-performance cathode materials.


Advanced Materials | 2017

Critical Role of Cations in Lithium Sites on Extended Electrochemical Reversibility of Co-Rich Layered Oxide

Woongrae Cho; Seungjun Myeong; Namhyung Kim; Sanghan Lee; Young-Ki Kim; Maengsuk Kim; Seok Ju Kang; Noejung Park; Pilgun Oh; Jaephil Cho

Only a very limited amount of the high theoretical energy density of LiCoO2 as a cathode material has been realized, due to its irreversible deterioration when more than 0.6 mol of lithium ions are extracted. In this study, new insights into the origin of such low electrochemical reversibility, namely the structural collapse caused by electrostatic repulsion between oxygen ions during the charge process are suggested. By incorporating the partial cation migration of LiNiO2 , which produces a screen effect of cations in the 3b-Li site, the phase distortion of LiCoO2 is successfully delayed which in turn expands its electrochemical reversibility. This study elucidates the relationship between the structural reversibility and electrochemical behavior of layered cathode materials and enables new design of Co-rich layered materials for cathodes with high energy density.


Nature Communications | 2018

Understanding voltage decay in lithium-excess layered cathode materials through oxygen-centred structural arrangement

Seungjun Myeong; Woongrae Cho; Wooyoung Jin; Jaeseong Hwang; Moonsu Yoon; Youngshin Yoo; Gyutae Nam; Haeseong Jang; Jung-Gu Han; Nam-Soon Choi; Min Gyu Kim; Jaephil Cho

Lithium-excess 3d-transition-metal layered oxides (Li1+xNiyCozMn1−x−y−zO2, >250 mAh g−1) suffer from severe voltage decay upon cycling, which decreases energy density and hinders further research and development. Nevertheless, the lack of understanding on chemical and structural uniqueness of the material prevents the interpretation of internal degradation chemistry. Here, we discover a fundamental reason of the voltage decay phenomenon by comparing ordered and cation-disordered materials with a combination of X-ray absorption spectroscopy and transmission electron microscopy studies. The cation arrangement determines the transition metal-oxygen covalency and structural reversibility related to voltage decay. The identification of structural arrangement with de-lithiated oxygen-centred octahedron and interactions between octahedrons affecting the oxygen stability and transition metal mobility of layered oxide provides the insight into the degradation chemistry of cathode materials and a way to develop high-energy density electrodes.There is growing interest in the fundamental understanding of the voltage decay mechanism in Li-excess layered cathode materials. Here, the authors report a multilateral and macroscopic analysis that considers interaction between oxygen and atomic arrangement of Li1+xNiyCozMn1−x−y−zO2.


Advanced Energy Materials | 2014

A Novel Surface Treatment Method and New Insight into Discharge Voltage Deterioration for High-Performance 0.4Li2MnO3–0.6LiNi1/3Co1/3Mn1/3O2 Cathode Materials

Pilgun Oh; Minseong Ko; Seungjun Myeong; Youngsik Kim; Jaephil Cho


Advanced Energy Materials | 2015

Countering Voltage Decay and Capacity Fading of Lithium‐Rich Cathode Material at 60 °C by Hybrid Surface Protection Layers

Wen Liu; Pilgun Oh; Xien Liu; Seungjun Myeong; Woongrae Cho; Jaephil Cho


Advanced Energy Materials | 2017

Li- and Mn-Rich Cathode Materials: Challenges to Commercialization

Jianming Zheng; Seungjun Myeong; Woongrae Cho; Pengfei Yan; Jie Xiao; Chongmin Wang; Jaephil Cho; Ji-Guang Zhang


ChemElectroChem | 2017

Cover Picture: Interfacial Architectures Derived by Lithium Difluoro(bisoxalato) Phosphate for Lithium-Rich Cathodes with Superior Cycling Stability and Rate Capability (ChemElectroChem 1/2017)

Jung-Gu Han; Inbok Park; Jiho Cha; Suhyeon Park; Sewon Park; Seungjun Myeong; Woograe Cho; Sung-Soo Kim; Sung You Hong; Jaephil Cho; Nam-Soon Choi


Advanced Energy Materials | 2017

Surface Engineering Strategies of Layered LiCoO2 Cathode Material to Realize High‐Energy and High‐Voltage Li‐Ion Cells

Sujith Kalluri; Moonsu Yoon; Minki Jo; Suhyeon Park; Seungjun Myeong; Junhyeok Kim; Shi Xue Dou; Zaiping Guo; Jaephil Cho


ChemElectroChem | 2017

Interfacial Architectures Derived by Lithium Difluoro(bisoxalato) Phosphate for Lithium‐Rich Cathodes with Superior Cycling Stability and Rate Capability

Jung-Gu Han; Inbok Park; Jiho Cha; Suhyeon Park; Sewon Park; Seungjun Myeong; Woograe Cho; Sung-Soo Kim; Sung You Hong; Jaephil Cho; Nam-Soon Choi


Advanced Energy Materials | 2014

Cathode Materials: A Novel Surface Treatment Method and New Insight into Discharge Voltage Deterioration for High‐Performance 0.4Li2MnO3–0.6LiNi1/3Co1/3Mn1/3O2 Cathode Materials (Adv. Energy Mater. 16/2014)

Pilgun Oh; Minseong Ko; Seungjun Myeong; Youngsik Kim; Jaephil Cho

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Jaephil Cho

Ulsan National Institute of Science and Technology

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Pilgun Oh

Ulsan National Institute of Science and Technology

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Woongrae Cho

Ulsan National Institute of Science and Technology

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Suhyeon Park

Ulsan National Institute of Science and Technology

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Jung-Gu Han

Ulsan National Institute of Science and Technology

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Minseong Ko

Ulsan National Institute of Science and Technology

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Moonsu Yoon

Ulsan National Institute of Science and Technology

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Nam-Soon Choi

Ulsan National Institute of Science and Technology

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Inbok Park

Ulsan National Institute of Science and Technology

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Jiho Cha

Ulsan National Institute of Science and Technology

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