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Ji-Woong Bae

Hanyang University · Engineering

About the Lab

Professor Ji-Woong Bae's research lab specializes in the design and engineering of functional hydrogels and nanostructured materials for advanced energy and water applications. The lab focuses on developing sustainable solutions for energy storage, such as solid-state and lithium-metal batteries, as well as solar-driven water evaporation and purification systems. By leveraging the tunable physicochemical properties of hydrogels and their derivatives, the lab pioneers innovative materials architectures—such as 3D nanostructured frameworks and light-absorbing hydrogels—to enhance ion transport, energy conversion efficiency, and interfacial stability.

hydrogelsenergy storagesolar evaporationsolid-state electrolyteslithium-metal batteries

Research Overview

Papers
52
Total Citations
4,583
Papers (5y)
14
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
14total
2022
2023
2024
2025
2026
Citations per year (5y)
97total
20222023202420252026

Selected Papers

15
1
Review|1,337 citations·2020
Hydrogels and Hydrogel-Derived Materials for Energy and Water Sustainability
Youhong Guo, Jiwoong Bae, Zhiwei Fang, Panpan Li, Fei Zhao, Guihua Yu
SJR Q1Chemical Reviews

Energy and water are of fundamental importance for our modern society, and advanced technologies on sustainable energy storage and conversion as well as water resource management are in the focus of intensive research worldwide. Beyond their traditional biological applications, hydrogels are emerging as an appealing materials platform for energy- and water-related applications owing to their attractive and tailorable physiochemical properties. In this review, we highlight the highly tunable synt

Renewable Energy, Sustainability and the EnvironmentEnergy
2
Article|643 citations·2018
A 3D Nanostructured Hydrogel‐Framework‐Derived High‐Performance Composite Polymer Lithium‐Ion Electrolyte
Jiwoong Bae, Yutao Li, Jun Zhang, Xingyi Zhou, Fei Zhao, Ye Shi, John B. Goodenough, Guihua Yu
SJR Q1Angewandte Chemie International Edition

Abstract Solid‐state electrolytes have emerged as a promising alternative to existing liquid electrolytes for next generation Li‐ion batteries for better safety and stability. Of various types of solid electrolytes, composite polymer electrolytes exhibit acceptable Li‐ion conductivity due to the interaction between nanofillers and polymer. Nevertheless, the agglomeration of nanofillers at high concentration has been a major obstacle for improving Li‐ion conductivity. In this study, we designed a

Electrical and Electronic EngineeringEngineering
3
Article|502 citations·2019
Synergistic Energy Nanoconfinement and Water Activation in Hydrogels for Efficient Solar Water Desalination
Youhong Guo, Xingyi Zhou, Fei Zhao, Jiwoong Bae, Brian Rosenberger, Guihua Yu
SJR Q1ACS Nano

Precisely controlled distribution of energy in solar-to-thermal energy conversion systems could allow for enhanced energy utilization. Light-absorbing hydrogels provide a means for evaporating water by using solar energy, yet targeted delivery of solar thermal energy to power the water evaporation process remains challenging. Here, we report a light-absorbing sponge-like hydrogel (LASH) that is created by <i>in situ</i> gelation of a light-absorbing nanoparticle-modified polymer, leading to syne

Renewable Energy, Sustainability and the EnvironmentEnergy
4
Article|263 citations·2018
Designing 3D nanostructured garnet frameworks for enhancing ionic conductivity and flexibility in composite polymer electrolytes for lithium batteries
Jiwoong Bae, Yutao Li, Fei Zhao, Xingyi Zhou, Yu Ding, Guihua Yu
SJR Q1Energy storage materialsOA
Electrical and Electronic EngineeringEngineering
5
Review|254 citations·2018
Nanostructured Functional Hydrogels as an Emerging Platform for Advanced Energy Technologies
Fei Zhao, Jiwoong Bae, Xingyi Zhou, Youhong Guo, Guihua Yu
SJR Q1Advanced MaterialsOA

Nanostructured materials are critically important in many areas of technology because of their unusual physical/chemical properties due to confined dimensions. Owing to their intrinsic hierarchical micro-/nanostructures, unique chemical/physical properties, and tailorable functionalities, hydrogels and their derivatives have emerged as an important class of functional materials and receive increasing interest from the scientific community. Bottom-up synthetic strategies to rationally design and

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|237 citations·2017
Nanostructured Host Materials for Trapping Sulfur in Rechargeable Li–S Batteries: Structure Design and Interfacial Chemistry
Jun Zhang, Hui Huang, Jiwoong Bae, Sheng‐Heng Chung, Wenkui Zhang, Arumugam Manthiram, Guihua Yu
SJR Q1Small MethodsOA

Abstract Lithium–sulfur (Li–S) batteries are considered as a promising candidate for next‐generation energy‐storage devices due to their high energy density, low cost, and ecofriendliness. However, the practical application of Li–S batteries faces challenges arising from the cathode, the electrolyte, and the anode, including the intrinsically low conductivity of sulfur and lithium sulfide (Li 2 S), the high solubility of polysulfides in the electrolytes commonly used, and the dendrite growth of

Electrical and Electronic EngineeringEngineering
7
Article|230 citations·2019
Functional Hydrogels for Next-Generation Batteries and Supercapacitors
Youhong Guo, Jiwoong Bae, Fei Zhao, Guihua Yu
SJR Q1Trends in ChemistryOA
Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|172 citations·2019
Polar polymer–solvent interaction derived favorable interphase for stable lithium metal batteries
Jiwoong Bae, Yumin Qian, Yutao Li, Xingyi Zhou, John B. Goodenough, Guihua Yu
SJR Q1Energy & Environmental ScienceOA

Effective and dense Li plating/stripping by suppressing free solvents from intermolecular dipole–dipole interaction between a polar polymer &amp; solvents, resulting in high-performance Li-metal batteries.

Electrical and Electronic EngineeringEngineering
9
Article|116 citations·2020
Redistributing Li‐Ion Flux by Parallelly Aligned Holey Nanosheets for Dendrite‐Free Li Metal Anodes
Yangen Zhou, Xiao Zhang, Yu Ding, Jiwoong Bae, Xuelin Guo, Yu Zhao, Guihua Yu
SJR Q1Advanced Materials

Abstract Li metal is the most ideal anode material to assemble rechargeable batteries with high energy density. However, nonuniform Li‐ion flux during repeated Li plating and stripping leads to continuous Li dendrite growth and dead Li formation, which causes safety risks and short lifetime and thus impedes the commercialization of Li metal batteries. Here, parallelly aligned holey nanosheets on a Li metal anode are reported to simultaneously redistribute the Li‐ion flux in the electrolyte and i

Electrical and Electronic EngineeringEngineering
10
Article|90 citations·2021
High-performance magnesium metal batteries via switching the passivation film into a solid electrolyte interphase
Jiwoong Bae, Hyoju Park, Xuelin Guo, Xiao Zhang, Jamie H. Warner, Guihua Yu
SJR Q1Energy & Environmental ScienceOA

Mg<sup>2+</sup> electroplating has been an obstacle for Mg metal batteries due to the passivating nature of Mg metal. Here, a unique current collector based on an amorphous MgO-wrapped Zn-skeleton enabled Mg<sup>2+</sup> electroplating for a high-voltage Mg metal battery.

Electrical and Electronic EngineeringEngineering
11
Article|47 citations·2021
A General Strategy of Anion-Rich High-Concentration Polymeric Interlayer for High-Voltage, All-Solid-State Batteries
Jiwoong Bae, Xiao Zhang, Xuelin Guo, Guihua Yu
SJR Q1Nano Letters

All-solid-state batteries are promising energy storage systems as a power source for future electric applications. However, the solid electrolytes have suffered from oxidative vulnerability at the catalytic cathode's surface, particularly at the high-voltage charging process. The poor charge transport and the contact issue at the electrolyte/electrode interface also hamper fully utilizing high-energy-density batteries. In this work, a general design of a high-concentration polymeric interlayer i

Electrical and Electronic EngineeringEngineering
12
Article|45 citations·2014
Influence of the grain size of samaria-doped ceria cathodic interlayer for enhanced surface oxygen kinetics of low-temperature solid oxide fuel cell
Jiwoong Bae, Soonwook Hong, Bongjun Koo, Jihwan An, Fritz B. Prinz, Young‐Beom Kim
SJR Q1Journal of the European Ceramic Society
Materials ChemistryMaterials Science
13
Article|41 citations·2018
A 3D Nanostructured Hydrogel‐Framework‐Derived High‐Performance Composite Polymer Lithium‐Ion Electrolyte
Jiwoong Bae, Yutao Li, Jun Zhang, Xingyi Zhou, Fei Zhao, Ye Shi, John B. Goodenough, Guihua Yu
Angewandte Chemie

Abstract Solid‐state electrolytes have emerged as a promising alternative to existing liquid electrolytes for next generation Li‐ion batteries for better safety and stability. Of various types of solid electrolytes, composite polymer electrolytes exhibit acceptable Li‐ion conductivity due to the interaction between nanofillers and polymer. Nevertheless, the agglomeration of nanofillers at high concentration has been a major obstacle for improving Li‐ion conductivity. In this study, we designed a

Electrical and Electronic EngineeringEngineering
14
Article|29 citations·2016
Thermally-Induced Dopant Segregation Effects on the Space Charge Layer and Ionic Conductivity of Nanocrystalline Gadolinia-Doped Ceria
Jiwoong Bae, Yonghyun Lim, Jun-Sik Park, Dohaeng Lee, Soonwook Hong, Jihwan An, Young-Beom Kim
SJR Q1Journal of The Electrochemical Society

Grain boundaries are known to block ionic conduction across grain boundaries in oxide ion conductors due to adjacent space charge layers. Since the positively charged grain boundary core is intensified with a high local concentration of defects such as oxygen vacancies, uniform distribution of a dopant may mitigate the formation of space charge layers and enhance the ionic conductivity. To investigate the dopant segregation effect on the space charge layer and ionic conductivity, we provided the

Materials ChemistryMaterials Science
15
Article|22 citations·2015
Three-dimensional hexagonal GDC interlayer for area enhancement of low-temperature solid oxide fuel cells
Jiwoong Bae, Dohaeng Lee, Soonwook Hong, Hwichul Yang, Young‐Beom Kim
SJR Q1Surface and Coatings TechnologyOA
Materials ChemistryMaterials Science

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryAerospace EngineeringRenewable Energy, Sustainability and the EnvironmentElectronic, Optical and Magnetic MaterialsBiomedical Engineering

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