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Hansu Kim

Hanyang University · Engineering

About the Lab

Professor Hansu Kim's research lab specializes in the development of advanced nanomaterials for next-generation energy storage systems, with a primary focus on high-capacity anode materials for lithium-ion and post-lithium batteries. The lab explores silicon-based nanostructures, conversion-type oxides, and alternative metal anodes (such as Li, Na, Mg, Zn, and Al) to address challenges related to volume expansion, poor cyclability, and low rate capability. Innovative synthesis strategies—including electrospinning, dealloying, and templated fabrication—are employed to design porous, hollow, and 2D nanostructured materials with enhanced electrochemical performance. The lab integrates advanced characterization techniques to understand reaction mechanisms and degradation pathways, aiming to bridge the gap between material design and practical battery applications.

nanomaterialsenergy storagelithium-ion batteriessilicon anodes2D oxides

Research Overview

Papers
273
Total Citations
11,890
Papers (5y)
53
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
53total
2022
2023
2024
2025
2026
Citations per year (5y)
337total
20222023202420252026

Selected Papers

15
1
Review|986 citations·2013
Metallic anodes for next generation secondary batteries
Hansu Kim, Goojin Jeong, Young-Ugk Kim, Jae‐Hun Kim, Cheol‐Min Park, Hun‐Joon Sohn
SJR Q1Chemical Society Reviews

Li-air(O2) and Li-S batteries have gained much attention recently and most relevant research has aimed to improve the electrochemical performance of air(O2) or sulfur cathode materials. However, many technical problems associated with the Li metal anode have yet to be overcome. This review mainly focuses on the electrochemical behaviors and technical issues related to metallic Li anode materials as well as other metallic anode materials such as alkali (Na) and alkaline earth (Mg) metals, includi

Electrical and Electronic EngineeringEngineering
2
Article|889 citations·2010
Arrays of Sealed Silicon Nanotubes As Anodes for Lithium Ion Batteries
Taeseup Song, Jianliang Xia, Jin-Hyon Lee, Dong Hyun Lee, Moon-Seok Kwon, Jae-Man Choi, Jian Wu, Seok Kwang Doo, Hyuk Chang, Won Il Park, Dong Sik Zang, Hansu Kim
SJR Q1Nano Letters

Silicon is a promising candidate for electrodes in lithium ion batteries due to its large theoretical energy density. Poor capacity retention, caused by pulverization of Si during cycling, frustrates its practical application. We have developed a nanostructured form of silicon, consisting of arrays of sealed, tubular geometries that is capable of accommodating large volume changes associated with lithiation in battery applications. Such electrodes exhibit high initial Coulombic efficiencies (i.e

Electrical and Electronic EngineeringEngineering
3
Article|256 citations·2011
Nitridated TiO2 hollow nanofibers as an anode material for high power lithium ion batteries
Hyungkyu Han, Taeseup Song, Jae-Young Bae, Linda F. Nazar, Hansu Kim, Ungyu Paik
SJR Q1Energy & Environmental Science

TiO2 nanofibers, TiO2 hollow nanofibers, and nitridated TiO2 hollow nanofibers were synthesized using a simple electrospinning method and subsequent nitridation treatment. The nitridated TiO2 hollow nanofibers showed twice higher rate capability compared to that of pristine TiO2 nanofibers at 5 C. This improvement is mainly attributed to shorter lithium ion diffusion length and high electronic conductivity along the surface of nitridated hollow nanofibers.

Electrical and Electronic EngineeringEngineering
4
Article|231 citations·2011
Si/Ge Double-Layered Nanotube Array as a Lithium Ion Battery Anode
Taeseup Song, Huanyu Cheng, Heechae Choi, Jin-Hyon Lee, Hyungkyu Han, Dong Hyun Lee, Dong Su Yoo, Moon-Seok Kwon, Jae-Man Choi, Seok Gwang Doo, Hyuk Chang, Jianliang Xiao
SJR Q1ACS Nano

Problems related to tremendous volume changes associated with cycling and the low electron conductivity and ion diffusivity of Si represent major obstacles to its use in high-capacity anodes for lithium ion batteries. We have developed a group IVA based nanotube heterostructure array, consisting of a high-capacity Si inner layer and a highly conductive Ge outer layer, to yield both favorable mechanics and kinetics in battery applications. This type of Si/Ge double-layered nanotube array electrod

Electrical and Electronic EngineeringEngineering
5
Article|199 citations·2019
Improved fast charging capability of graphite anodes via amorphous Al2O3 coating for high power lithium ion batteries
Dae Sik Kim, Yeong Eun Kim, Hansu Kim
SJR Q1Journal of Power Sources
Electrical and Electronic EngineeringEngineering
6
Article|188 citations·1999
The Insertion Mechanism of Lithium into Mg2Si Anode Material for Li‐Ion Batteries
Hansu Kim, Junghee Choi, Hun‐Joon Sohn, Tak Kang
SJR Q1Journal of The Electrochemical Society

The reaction mechanism of lithium insertion into was studied using various analytic techniques including electrochemical measurements, X‐ray diffraction (XRD), and Auger electron spectroscopy (AES). Electrochemical tests demonstrated that 1 mol reacted with 3.9 mol Li from which the initial capacity obtained was approximately 1370 mAh/g. Ex situ XRD and AES data showed that lithium intercalated into the lattice first followed by alloying with Si and Mg. The degradation mechanism of during cyclin

Electrical and Electronic EngineeringEngineering
7
Article|170 citations·2014
Recent advances in the Si-based nanocomposite materials as high capacity anode materials for lithium ion batteries
Hansu Kim, Eung-Ju Lee, Yang‐Kook Sun
SJR Q1Materials TodayOA

In order to develop high capacity electrode materials with next generation Li-ion batteries, intensive research effort has been actively devoted to satisfy the power demands for electronic devices, electric vehicles and energy storage units for renewable energy. This review focuses on high capacity Si based nanostructured anode materials composed of Si and various inactive phase materials. This review is devoted mainly to their electrochemical performances and technical issues when they were emp

Electrical and Electronic EngineeringEngineering
8
Article|141 citations·2018
Microstructure Controlled Porous Silicon Particles as a High Capacity Lithium Storage Material via Dual Step Pore Engineering
Myungbeom Sohn, Dong Geun Lee, Hyeong‐Il Park, Cheol‐Ho Park, Jeong‐Hee Choi, Hansu Kim
SJR Q1Advanced Functional Materials

Abstract To overcome the lithium storage barriers of current lithium‐ion batteries, it is imperative that conventional low capacity graphite anodes be replaced with other higher capacity anode materials. Silicon is a promising alternative anode material due to its huge energy densities; however, its lithium‐concentration‐dependent volumetric changes can induce severely adverse effects that lead to drastic degradations in capacity during cycling. The dealloying of Si–metal alloys is recently sugg

Electrical and Electronic EngineeringEngineering
9
Article|134 citations·2015
Highly Cyclable Lithium–Sulfur Batteries with a Dual-Type Sulfur Cathode and a Lithiated Si/SiOx Nanosphere Anode
Sang Gyu Lee, Seung-Min Oh, Eunjun Park, Bruno Scrosati, Jusef Hassoun, Min‐Sik Park, Young‐Jun Kim, Hansu Kim, Ilias Belharouak, Yang‐Kook Sun
SJR Q1Nano LettersOA

Lithium-sulfur batteries could become an excellent alternative to replace the currently used lithium-ion batteries due to their higher energy density and lower production cost; however, commercialization of lithium-sulfur batteries has so far been limited due to the cyclability problems associated with both the sulfur cathode and the lithium-metal anode. Herein, we demonstrate a highly reliable lithium-sulfur battery showing cycle performance comparable to that of lithium-ion batteries; our desi

Electrical and Electronic EngineeringEngineering
10
Article|132 citations·2016
Discovery of abnormal lithium-storage sites in molybdenum dioxide electrodes
Jeong Kuk Shon, Hyo Sug Lee, Gwi Ok Park, Jeongbae Yoon, Eunjun Park, Gyeong Su Park, Soo Sung Kong, Mingshi Jin, Jae‐Man Choi, Hyuk Chang, Seok‐Gwang Doo, Ji Man Kim
SJR Q1Nature CommunicationsOA

Developing electrode materials with high-energy densities is important for the development of lithium-ion batteries. Here, we demonstrate a mesoporous molybdenum dioxide material with abnormal lithium-storage sites, which exhibits a discharge capacity of 1,814 mAh g(-1) for the first cycle, more than twice its theoretical value, and maintains its initial capacity after 50 cycles. Contrary to previous reports, we find that a mechanism for the high and reversible lithium-storage capacity of the me

Electrical and Electronic EngineeringEngineering
11
Article|123 citations·2015
Dual-Size Silicon Nanocrystal-Embedded SiOx Nanocomposite as a High-Capacity Lithium Storage Material
Eunjun Park, Hyundong Yoo, Jae Wook Lee, Min‐Sik Park, Young‐Jun Kim, Hansu Kim
SJR Q1ACS Nano

SiOx-based materials attracted a great deal of attention as high-capacity Li(+) storage materials for lithium-ion batteries due to their high reversible capacity and good cycle performance. However, these materials still suffer from low initial Coulombic efficiency as well as high production cost, which are associated with the complicated synthesis process. Here, we propose a dual-size Si nanocrystal-embedded SiOx nanocomposite as a high-capacity Li(+) storage material prepared via cost-effectiv

Electrical and Electronic EngineeringEngineering
12
Article|122 citations·2011
Enhancement of electrochemical and thermal properties of polyethylene separators coated with polyvinylidene fluoride–hexafluoropropylene co-polymer for Li-ion batteries
Ki Jae Kim, Jae‐Hun Kim, Min‐Sik Park, Hyuk Kwon Kwon, Hansu Kim, Young‐Jun Kim
SJR Q1Journal of Power Sources
Electrical and Electronic EngineeringEngineering
13
Article|102 citations·2014
Hydrogen Silsequioxane-Derived Si/SiOx Nanospheres for High-Capacity Lithium Storage Materials
Min‐Sik Park, Eunjun Park, Jae Wook Lee, Goojin Jeong, Ki Jae Kim, Jung Ho Kim, Young‐Jun Kim, Hansu Kim
SJR Q1ACS Applied Materials & Interfaces

Si/SiOx composite materials have been explored for their commercial possibility as high-performance anode materials for lithium ion batteries, but suffer from the complexity of and limited synthetic routes for their preparation. In this study, Si/SiOx nanospheres were developed using a nontoxic and precious-metal-free preparation method based on hydrogen silsesquioxane obtained from sol-gel reaction of triethoxysilane. The resulting Si/SiOx nanospheres with a uniform carbon coating layer show ex

Electrical and Electronic EngineeringEngineering
14
Article|83 citations·2021
Dehydrogenation-driven Li metal-free prelithiation for high initial efficiency SiO-based lithium storage materials
Dong Jae Chung, Donghan Youn, Soohwan Kim, Donghyeok Ma, Jiwhan Lee, Won Joon Jeong, Eunjun Park, Joon-Sup Kim, Chulsoon Moon, Ji Yeong Lee, Heeyoung Sun, Hansu Kim
SJR Q1Nano Energy
Electrical and Electronic EngineeringEngineering
15
Article|81 citations·2016
High-Performance Si/SiOx Nanosphere Anode Material by Multipurpose Interfacial Engineering with Black TiO2–x
Juhye Bae, Dae Sik Kim, Hyundong Yoo, Eunjun Park, Young‐Geun Lim, Min‐Sik Park, Young‐Jun Kim, Hansu Kim
SJR Q1ACS Applied Materials & Interfaces

Silicon oxides (SiOx) have attracted recent attention for their great potential as promising anode materials for lithium ion batteries as a result of their high energy density and excellent cycle performance. Despite these advantages, the commercial use of these materials is still impeded by low initial Coulombic efficiency and high production cost associated with a complicated synthesis process. Here, we demonstrate that Si/SiOx nanosphere anode materials show much improved performance enabled

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryPolymers and PlasticsElectronic, Optical and Magnetic MaterialsAtomic and Molecular Physics, and OpticsCatalysis

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