Chungbuk National University

Green Energy Laboratory


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G. E. Lab. News

“Synergistic control of cohesive and adhesive forces in anchored porous CoMn2O4 for superior reversible lithium-ion storage and high energy-power density,” J. Energy Storage, 88, 111378 (2024)

"MXene–carbon based hybrid materials for supercapacitor applications," Energy Adv., 3, 341-365 (2024)

"Borocarbonitride-Based Emerging Materials for Supercapacitor Applications: Recent Advances, Challenges, and Future Perspectives," Adv. Sci., 2305325 (2023)

"Hierarchically nanofibers embedded with NiMnS nanocrystals as anode for high-performance lithium-ion batteries: Experimental and theoretical studies," Chem. Eng. J., 481, 148578 (2024)

"Interconnected nickel cobalt vanadate quasi-spheres as an efficient and stable oxygen evolution electrocatalyst in alkaline media," J. Ind. Eng. Chem., 131, 441-448 (2024).

"Surface-engineered carbon nanofibers enriched with metallic particles for effective bimetallic MOF formation toward hybrid supercapacitors," J. Energy Storage, 73, 109260 (2023).

사업명 : 고도분석기술 기반 차세대 이차전지 소재 플랫폼  

주관기관 : 충북대학교 (총괄사업단장 : 정상문교수님)

"Metal oxides decorated carbon nanotube freestanding electrodes for high performance of lithium-sulfur batteries," Korean Chem. Eng. Res., 61, 1-13 (2023)

센터명 : 기업수요 대응 차세대 이차전지 소재선도연구센터 (E8-8동 110호)

총괄사업단장 : 정상문교수님

"Experimental and Theoretical Insights of Anion Regulation in MOF-Derived Ni-Co-Based Nanosheets for Supercapacitors and Anion Exchange Membrane Water Electrolyzers," ACS Appl. Mater. Interfaces, 15 , 32436-32452 (2023)

- 이차전지 혁신융합대학 블로그 : https://blog.naver.com/2superbattery 

“Vertical graphene nanosheets as interface current-collector for enhanced charge-storage kinetics of bimetallic MOF nano-rods and asymmetric solid-state supercapacitors,” J. Energy Storage, 68, 107824 (2023).

Ligand-Controlled Growth of Different Morphological Bimetallic Metal–Organic Frameworks for Enhanced Charge-Storage Performance and Quasi-Solid-State Hybrid Supercapacitors," ACS Appl. Mater. Interfaces, 15(17) 21097–21111 (2023).

Quasi-solid-state hybrid supercapacitors assembled by Ni-Co-P@C/Ni-B nanoarrays and porous carbon nanofibers with N-doped C nanocages," Chem. Eng. J., 466, 143064 (2023).

Surface hydroxyl group-enriched nickel cobalt molybdate hydrate for improved oxygen evolution activity in an anion exchange membrane water electrolyzer,” Appl. Catal. B: Environmental, 328, 122504 (2023).

High-Entropy Metal Oxide (NiMnCrCoFe)3O4 Anode Materials with Controlled Morphology for High-Performance Lithium-Ion Batteries,” Batteries, 9(3), 147 (2023).

“Synthesis of carbon-coated FeOx nanoparticles via spray solidification as anode materials for high-performnace lithium-ion batteries,” Appl. Surf. Sci., 611(A), 155647 (2023).

“Upcycling of silicon scrap collected from photovoltaic cell manufacturing process for lithium-ion batteries via transferred arc thermal plasma,” Energy, 262(B), 125447 (2023).

“Mixed Transition Metal Carbonate Hydroxide-Based Nanostructured Electrocatalysts for Alkaline Oxygen Evolution: Status and Perspectives,” Adv. Energy Sustainability Res., 3(9), 2200071 (2022).

“Recent developments and futures perspectives of supercapacitor based on plasma enhanced chemical vapour deposited vertical-standing graphene arrays,” J. Energy Storage, 53, 105212 (2022).

"Porous nanofibers comprising hollow Co3O4/Fe3O4 nanospheres and nitrogen-doped carbon derived by Fe@ZIF-67 as anode materials for lithium-ion batteries," Int J Energy Res. Eng. Res., 46(7), 8934-8948 (2022).

" Electrochemical Deposition Characteristics of Ca2+ on Cu Wire Electrode in CaCl2 Molten Salt," Korean Chem. Eng. Res., 60(2), 175-183 (2022).

" Preparation and Electrochemical Properties of Freestanding Flexible S/CNT/NiO Electrodes for Li-S Batteries," Korean Chem. Eng. Res., 60(2), 184-192 (2022).

" Rationally designed hierarchical tree-like Fe-Co-P@Ni(OH)2 hybrid nanoarrays for high energy density asymmetric supercapacitors," Appl. Surf. Sci., 588, 152858 (2022).

"Efficient synthesis of high areal capacity Si@graphite@SiC composite anode material via one-step electro-deoxidation," Journal of Alloys and Compounds, 896, 163010 (2022).

"Hierarchical MCo2O4@Ni(OH)2 (M = Zn or Mn) Core@Shell Architectures as Electrode Materials for Asymmetric Solid-State Supercapacitors," Journal of Energy Storage. 44, 103345 (2021).

"Cathode of Zn-Ni Layered Double Hydroxide Nanosheet Arrays Wrapped with a Porous NiMoSx Shell and Anode of 3D Hierarchical Nitrogen-Doped Carbon for High-Performance Asymmetric Supercapacitors," ACS Appl. Energy Mater, (2021)

“A dual-ligand synergistic modulation approach for improving the supercapacitive performance of the hierarchical mesoporous zinc−nickel−iron phosphide nanosheets electrode,” J. Ind. Eng. Chem., 99, 299-308 (2021). 

"Optimization of B2O3 coating process for NCA cathodes to achieve long-term stability for application in lithium ion batteries," Energy, 222 . 119913(2021)

"Fabrication of hierarchical Zn–Ni–Co–S nanowire arrays and graphitic carbon nitride/graphene for solid-state asymmetric supercapacitors"Applied Surface Science, 542 , 148564(2021)

“Freestanding flexible multilayered sulfur-carbon nanotubes for lithium-sulfur battery cathodes,” Energy, 212, 118779(2020)

“From waste biofuel to energy storage materials: Facile and scalable synthesis of silicon nanowires from rice husk silica by molten salt process,” J. Hazardous Materials, 399, 122949(2020)

“Electrochemical performance of electrospun lotus–root–structure porous multichannel carbon nanotubes for lithium–sulfur battery applications,” J. Electroanal.Chem., 878, 114564(2020)

“Heteroatom-doped manocarbons for high-performance supercapacitors,” Adv. Energy Mater., 10, 2001239(2020)


G. E. Lab. Award


주소: (우)28644 충북 청주시 서원구 충대로 1(개신동) 충북대학교 공과대학 화학공학과 (E8-10동 707호, 708, 209호)

Address : 1 Chungdae-ro, Seowon-gu, Cheongju, Chungbuk 28644, Korea (Dept. of Chemical Engineering, E8-10, No. 707, 708, 209)