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Hongkyung Lee

Yonsei University · Engineering

About the Lab

Professor Hongkyung Lee's research lab specializes in advanced energy storage materials, with a primary focus on next-generation batteries such as lithium-metal, sodium-ion, and lithium-oxygen batteries. The lab investigates critical challenges including dendrite suppression, interfacial stability, and electrode degradation, employing innovative materials design such as modified Prussian blue analogues, functional separators, and carbon- and binder-free cathodes. Key research directions include surface engineering of lithium metal anodes, development of stable solid-electrolyte interphases, and 3D host architectures to enhance cyclability and energy density.

lithium metal batteriesenergy storagesolid-electrolyte interphasesodium-ion batteries3D host architectures

Research Overview

Papers
162
Total Citations
10,580
Papers (5y)
66
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
66total
2022
2023
2024
2025
2026
Citations per year (5y)
396total
20222023202420252026

Selected Papers

15
1
Article|243 citations·2015
A simple composite protective layer coating that enhances the cycling stability of lithium metal batteries
Hongkyung Lee, Dong Jin Lee, Yun‐Jung Kim, Jung-Ki Park, Hee-Tak Kim
SJR Q1Journal of Power Sources
Electrical and Electronic EngineeringEngineering
2
Article|214 citations·2012
Sodium zinc hexacyanoferrate with a well-defined open framework as a positive electrode for sodium ion batteries
Hongkyung Lee, Yong-il Kim, Jung-Ki Park, Jang Wook Choi
SJR Q1Chemical Communications

A modified Prussian blue analogue, Na(2)Zn(3)[Fe(CN)(6)](2)·xH(2)O, was investigated as a positive electrode material. Utilizing a well-defined channel structure, the compound exhibits a clear electrochemical activity at around 3.5 V vs. Na/Na(+) with a reversible capacity of 56.4 mA h g(-1) and good cycle life.

Electrical and Electronic EngineeringEngineering
3
Article|198 citations·2017
Suppressing Lithium Dendrite Growth by Metallic Coating on a Separator
Hongkyung Lee, Xiaodi Ren, Chaojiang Niu, Yu Lu, Mark Engelhard, Inseong Cho, Myung‐Hyun Ryou, Hyun Soo Jin, Hee‐Tak Kim, Jun Liu, Wu Xu, Ji‐Guang Zhang
SJR Q1Advanced Functional MaterialsOA

Abstract Lithium (Li) metal is one of the most promising candidates for the anode in high‐energy‐density batteries. However, Li dendrite growth induces a significant safety concerns in these batteries. Here, a multifunctional separator through coating a thin electronic conductive film on one side of the conventional polymer separator facing the Li anode is proposed for the purpose of Li dendrite suppression and cycling stability improvement. The ultrathin Cu film on one side of the polyethylene

Electrical and Electronic EngineeringEngineering
4
Article|140 citations·2020
Safe, Stable Cycling of Lithium Metal Batteries with Low‐Viscosity, Fire‐Retardant Locally Concentrated Ionic Liquid Electrolytes
Sukhyung Lee, Kisung Park, Bonhyeop Koo, Changhun Park, Min‐Chul Jang, Hongkyung Lee, Hongkyung Lee, Hochun Lee, Hochun Lee
SJR Q1Advanced Functional Materials

Abstract Ionic liquid (IL) electrolytes with concentrated Li salt can ensure safe, high‐performance Li metal batteries (LMBs) but suffer from high viscosity and poor ionic transport. A locally concentrated IL (LCIL) electrolyte with a non‐solvating, fire‐retardant hydrofluoroether (HFE) is presented. This rationally designed electrolyte employs lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), 1‐methyl‐1‐propyl pyrrolidinium bis(fluorosulfonyl)imide (P13FSI) and 1,1,2,2‐tetrafluoroethyl 2,2,3

Electrical and Electronic EngineeringEngineering
5
Article|138 citations·2018
Detrimental Effects of Chemical Crossover from the Lithium Anode to Cathode in Rechargeable Lithium Metal Batteries
Hongkyung Lee, Hyung‐Seok Lim, Xiaodi Ren, Yu Lu, Mark Engelhard, Kee Sung Han, Jin Hong Lee, Hee‐Tak Kim, Jie Xiao, Jun Liu, Wu Xu, Ji‐Guang Zhang
SJR Q1ACS Energy Letters

Interfacial stability is one of the crucial factors for long-term cyclability of lithium (Li) metal batteries (LMBs). While cross-contamination phenomena have been well-studied in Li-ion batteries (LIBs), similar phenomena have rarely been reported in LMBs. Here, we investigated cathode failure triggered by chemical crossover from the anode in LMBs. In contrast to LIBs, the cathode in LMBs suffers more significant capacity fading, and its capacity cannot be fully recovered by replacing the Li an

Electrical and Electronic EngineeringEngineering
6
Article|98 citations·2021
Robust Cycling of Ultrathin Li Metal Enabled by Nitrate‐Preplanted Li Powder Composite
Dahee Jin, Youngjoon Roh, Taejin Jo, Myung‐Hyun Ryou, Hongkyung Lee, Yong Min Lee
SJR Q1Advanced Energy Materials

Abstract Making Li metal batteries (LMBs) with thinner Li is necessary to improve the cell energy density in practice. Li metal powders (LMPs) are beneficial for the facile manufacturing of thin Li, flexible cell design, and the 3D control of Li plating/stripping. However, the inhomogeneous surfaces of commercial LMPs limit their practical use in LMBs. Herein, a 20 µm‐thick, LiNO 3 preplanted LMP (LN‐LMP) composite electrode, rationally designed for LMP surface stabilization, is presented. The a

Electrical and Electronic EngineeringEngineering
7
Article|94 citations·2014
Directly grown Co3O4nanowire arrays on Ni-foam: structural effects of carbon-free and binder-free cathodes for lithium–oxygen batteries
Hongkyung Lee, Yun‐Jung Kim, Dong Jin Lee, Jongchan Song, Yong Min Lee, Hee‐Tak Kim, Jung-Ki Park
SJR Q1Journal of Materials Chemistry A

The problem of carbon and binder decomposition, degrading the performance levels of the cathodes used in lithium–oxygen (Li–O2) batteries, remains unsolved. For this reason, using carbon and binder-free cathodes may be an ideal approach to remedy this problem. Here, we have developed a carbon free- and binder-free cathode for Li–O2 batteries based on vertically grown Co3O4 nanowire (NW) arrays on Ni-foam and demonstrated the suppression of this type of decomposition. The highly organized texture

Electrical and Electronic EngineeringEngineering
8
Article|92 citations·2016
Structural modulation of lithium metal-electrolyte interface with three-dimensional metallic interlayer for high-performance lithium metal batteries
Hongkyung Lee, Jongchan Song, Yun‐Jung Kim, Jung-Ki Park, Hee‐Tak Kim
SJR Q1Scientific ReportsOA

The use of lithium (Li) metal anodes has been reconsidered because of the necessity for a higher energy density in secondary batteries. However, Li metal anodes suffer from 'dead' Li formation and surface deactivation which consequently form a porous layer of redundant Li aggregates. In this work, a fibrous metal felt (FMF) as a three-dimensional conductive interlayer was introduced between the separator and the Li metal anode to improve the reversibility of the Li metal anode. The FMF can facil

Electrical and Electronic EngineeringEngineering
9
Article|77 citations·2014
Chemical aspect of oxygen dissolved in a dimethyl sulfoxide-based electrolyte on lithium metal
Hongkyung Lee, Dong Jin Lee, Je-Nam Lee, Jongchan Song, Yun‐Ju Lee, Yun‐Ju Lee, Myung‐Hyun Ryou, Jung-Ki Park, Yong Min Lee, Yong Min Lee
SJR Q1Electrochimica Acta
Electrical and Electronic EngineeringEngineering
10
Article|48 citations·2021
Wide temperature cycling of Li-metal batteries with hydrofluoroether dilution of high-concentration electrolyte
Kisung Park, Youngseong Jo, Bonhyeop Koo, Hongkyung Lee, Hochun Lee
SJR Q1Chemical Engineering Journal
Electrical and Electronic EngineeringEngineering
11
Article|47 citations·2020
Lithium Dendrite Suppression with a Silica Nanoparticle-Dispersed Colloidal Electrolyte
Jin Hong Lee, Hyung‐Seok Lim, Xia Cao, Xiaodi Ren, Won‐Jin Kwak, Ismael A. Rodríguez‐Pérez, Ji‐Guang Zhang, Hongkyung Lee, Hee‐Tak Kim
SJR Q1ACS Applied Materials & Interfaces

Developing a safe and long-lasting lithium (Li) metal battery is crucial for high-energy applications. However, its poor cycling stability due to Li dendrite formation and excessive Li pulverization is the major hurdle for its practical applications. Here, we present a silica (SiO<sub>2</sub>) nanoparticle-dispersed colloidal electrolyte (NDCE) and its design principle for suppressing Li dendrite formation. SiO<sub>2</sub> nanoclusters in the NDCE play roles in enhancing the Li<sup>+</sup> trans

Electrical and Electronic EngineeringEngineering
12
Article|46 citations·2018
Electrode Edge Effects and the Failure Mechanism of Lithium‐Metal Batteries
Hongkyung Lee, Shuru Chen, Xiaodi Ren, Abraham Martinez, V. Shutthanandan, Vijayakumar Murugesan, Kee Sung Han, Qiuyan Li, Jun Liu, Wu Xu, Ji‐Guang Zhang
SJR Q1ChemSusChemOA

Abstract The very high specific capacity of Li metal makes it an ideal anode for high‐energy batteries. However, Li dendrite growth and the formation of isolated (or “dead”) Li during repeated Li plating/stripping processes leads to a low coulombic efficiency (CE). In this work, we discovered, for the first time, that electrode edge effects play an important role in the failure of Li‐metal batteries. The dead Li formed on the edge of Cu substrate was systematically investigated through SEM, ener

Electrical and Electronic EngineeringEngineering
13
Article|37 citations·2022
Structural and Chemical Evolutions of Li/Electrolyte Interfaces in Li‐Metal Batteries: Tracing Compositional Changes of Electrolytes under Practical Conditions
Youngseong Jo, Dahee Jin, Minhong Lim, Hyuntae Lee, Hyuntae Lee, Hyeongguk An, Jiyeon Seo, Gunyoung Kim, Xiaodi Ren, Yong Min Lee, Hongkyung Lee, Hongkyung Lee
SJR Q1Advanced ScienceOA

Abstract Despite the promises in high‐energy‐density batteries, Li‐metal anodes (LMAs) have suffered from extensive electrolyte decomposition and unlimited volume expansion owing to thick, porous layer buildup during cycling. It mainly originates from a ceaseless reiteration of the formation and collapse of solid‐electrolyte interphase (SEI). This study reveals the structural and chemical evolutions of the reacted Li layer after different cycles and investigates its detrimental effects on the cy

Electrical and Electronic EngineeringEngineering
14
Article|34 citations·2023
Electrodeposition-guided pre-passivation of Li-metal anode to enable long stable cycling of practical Li-metal batteries
Jiyeon Seo, Wooyoung Jeong, Minhong Lim, Bo-Kyung Choi, Sanghyeon Park, Youngseong Jo, Jong-Won Lee, Hongkyung Lee
SJR Q1Energy storage materials
Electrical and Electronic EngineeringEngineering
15
Article|32 citations·2019
High-Rate Cycling of Lithium-Metal Batteries Enabled by Dual-Salt Electrolyte-Assisted Micropatterned Interfaces
Byeolhee Yoon, Jin-Kyu Park, Jin Hong Lee, Seokwoo Kim, Xiaodi Ren, Yong Min Lee, Hee‐Tak Kim, Hongkyung Lee, Myung‐Hyun Ryou
SJR Q1ACS Applied Materials & Interfaces

We present a synergistic strategy to boost the cycling performance of Li-metal batteries. The strategy is based on the combined use of a micropattern (MP) on the surface of the Li-metal electrode and an advanced dual-salt electrolyte (DSE) system to more efficiently control undesired Li-metal deposition at higher current density (∼3 mA cm<sup>-2</sup>). The MP-Li electrode induces a spatially uniform current distribution to achieve dendrite-free Li-metal deposition beneath the surface layer form

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringAutomotive EngineeringMechanical EngineeringEnvironmental ChemistryPolymers and PlasticsSurfaces, Coatings and Films

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