Operando investigation on the fast two-phase transition kinetics of LiFePO4/C composite cathodes with carbon additives for lithium-ion batteries
In this study, we demonstrate the effect of adding one-dimensional (1D) vapor-grown carbon fiber (VGCF) as a carbon additive to increase the electronic conductivity of LiFePO4 cathode. Because, the 1D VGCF structure can provide rapid and long-pathways for electron transfer and regulate a better phas...
| Main Authors: | Shih, Jengywan, Lin, Guanyin, James Li, Ying Jeng, Hung, Tai-Feng, Jose, Rajan, Karuppiah, Chelladurai, Yang, Chun–Chen |
|---|---|
| Format: | Article |
| Language: | English English |
| Published: |
Elsevier Ltd
2022
|
| Subjects: | |
| Online Access: | http://umpir.ump.edu.my/id/eprint/42685/ http://umpir.ump.edu.my/id/eprint/42685/1/Operando%20investigation%20on%20the%20fast%20two-phase%20transition%20kinetics.pdf http://umpir.ump.edu.my/id/eprint/42685/2/Operando%20investigation%20on%20the%20fast%20two-phase%20transition%20kinetics%20of%20LiFePO4_C%20composite%20cathodes%20with%20carbon%20additives%20for%20lithium-ion%20batteries_ABS.pdf |
Similar Items
In situ metal organic framework (ZIF-8) and Mechanofusion-Assisted MWCNT coating of LiFePO4/C composite material for lithium-ion batteries
by: Mathur, Priyatrisha, et al.
Published: (2023)
by: Mathur, Priyatrisha, et al.
Published: (2023)
In situ metal organic framework (ZIF-8) and mechanofusion-assisted MWCNT coating of LiFePO/C composite material for lithium-ion batteries
by: Mathur, Priyatrisha, et al.
Published: (2023)
by: Mathur, Priyatrisha, et al.
Published: (2023)
Mesoporous LiFePO4/C nanocomposite cathode materials for high power lithium ion batteries with superior performance
by: Wang, G., et al.
Published: (2010)
by: Wang, G., et al.
Published: (2010)
MoO3 nanoparticle coatings on high-voltage 5 V LiNi0.5 Mn1.5 O4 cathode materials for improving lithium-ion battery performance
by: Wu, Zong-Han, et al.
Published: (2022)
by: Wu, Zong-Han, et al.
Published: (2022)
LATP ionic conductor and in-situ graphene hybrid-layer coating on LiFePO4 cathode material at different temperatures
by: Yang, Chun-Chen, et al.
Published: (2018)
by: Yang, Chun-Chen, et al.
Published: (2018)
Synthesis and structural characterization of modified LiMnPO4 cathode materials for lithium ion batteries / Rajammal Karuppiah
by: Rajammal, Karuppiah
Published: (2016)
by: Rajammal, Karuppiah
Published: (2016)
Nitrogen-doped graphene guided formation of monodisperse microspheres of LiFePO4 nanoplates as the positive electrode material of lithium-ion batteries
by: Zhou, Yingke, et al.
Published: (2016)
by: Zhou, Yingke, et al.
Published: (2016)
Ballmilling-assisted synthesis and electrochemical performance of LiFePO4/C for lithium-ion battery adopting citric acid as carbon precursor
by: Zhang, D., et al.
Published: (2009)
by: Zhang, D., et al.
Published: (2009)
Unveiling high-power and high-safety lithium-ion battery separator based on interlayer of ZIF-67/cellulose nanofiber with electrospun poly(vinyl alcohol)/melamine nonwoven membranes
by: Wu, Xiaowei, et al.
Published: (2024)
by: Wu, Xiaowei, et al.
Published: (2024)
Effect of single-walled carbon nanotube sub-carbon additives and graphene oxide coating for enhancing the 5 V LiNi0.5Mn1.5O4 cathode material performance in lithium-ion batteries
by: Tsai, Yi-De, et al.
Published: (2022)
by: Tsai, Yi-De, et al.
Published: (2022)
A porous LiFePO4 and carbon nanotube composite
by: Zhou, Y., et al.
Published: (2010)
by: Zhou, Y., et al.
Published: (2010)
Response Surface Methodology (RSM) For Process Parameters Optimization Of LiFePO4 Using Flame Spray Reactor For Li-ION Batteries
by: Na, Yong Sik
Published: (2021)
by: Na, Yong Sik
Published: (2021)
3D amorphous carbon and graphene co-modified LiFePO4 composite derived from polyol process as electrode for high power lithium-ion batteries
by: Wu, G., et al.
Published: (2014)
by: Wu, G., et al.
Published: (2014)
Synthesis Process and Properties of V5+-Doped LiFePO4/C
by: Shao, Zongping, et al.
Published: (2016)
by: Shao, Zongping, et al.
Published: (2016)
Carbon nanotube and graphene nanosheet co-modified LiFePO4nanoplate composite cathode material by a facile polyol process
by: Wu, G., et al.
Published: (2013)
by: Wu, G., et al.
Published: (2013)
Phosphate polyanion materials as high-voltage lithium-ion battery cathode: A review
by: JinKiong, Ling, et al.
Published: (2021)
by: JinKiong, Ling, et al.
Published: (2021)
Effect of the nanometric LiFePO4 on the hydrogen storage properties of MgH2
by: Cheng, Y., et al.
Published: (2017)
by: Cheng, Y., et al.
Published: (2017)
Mechanoactivation-assisted synthesis and electrochemical characterization of manganese lightly doped LiFePO4
by: Wang, Y., et al.
Published: (2010)
by: Wang, Y., et al.
Published: (2010)
Facile low-temperature polyol process for LiFePO4 nanoplate and carbon nanotube composite
by: Wu, G., et al.
Published: (2013)
by: Wu, G., et al.
Published: (2013)
Electrochemical performance of aqueous hybrid supercapacitor based on LiFePO4/Si/graphene composite
by: Wan, N.W.K., et al.
Published: (2022)
by: Wan, N.W.K., et al.
Published: (2022)
Lithium-ion adsorption on surface modified porous carbon
by: Vijayan, Bincy Lathakumary, et al.
Published: (2023)
by: Vijayan, Bincy Lathakumary, et al.
Published: (2023)
Fabrication electro-spun Poly(vinyl alcohol)-Melamine nonwoven membrane composite separator for high-power lithium-ion batteries
by: Wu, Xiao-Wei, et al.
Published: (2024)
by: Wu, Xiao-Wei, et al.
Published: (2024)
Advanced quasi-solid-state lithium-sulfur batteries: A high-performance flexible LiTa2PO8-based hybrid solid electrolyte membrane with enhanced safety and efficiency
by: Anbunathan, Ammaiyappan, et al.
Published: (2024)
by: Anbunathan, Ammaiyappan, et al.
Published: (2024)
Synthesis And Electrochemical Behavior Of Lifepo4/C With Air-Electrode For Aqueous Lithium Ion Battery
by: Alias, Nurhaswani
Published: (2015)
by: Alias, Nurhaswani
Published: (2015)
A new cathode material LiCu2O2 for secondary lithium batteries
by: Jacob, M. Milburn Ebenezer, et al.
Published: (2000)
by: Jacob, M. Milburn Ebenezer, et al.
Published: (2000)
Solvent-free semi-interpenetrating composite polymer electrolyte based on dual Li-salt for solid-state lithium batteries
by: Ghufira, ., et al.
Published: (2025)
by: Ghufira, ., et al.
Published: (2025)
Preparation of long-term cycling stable ni-rich concentration–gradient NCMA cathode materials for li-ion batteries
by: Jeyakumar, Juliya, et al.
Published: (2023)
by: Jeyakumar, Juliya, et al.
Published: (2023)
Soft-combustion synthesis of a new cathode-active material, LiVWO6, for lithium-ion batteries
by: Prabaharan, S.R.S., et al.
Published: (2001)
by: Prabaharan, S.R.S., et al.
Published: (2001)
Effect of milling method and time on the properties and electrochemical performance of LiFePO4/C composites prepared by ball milling and thermal treatment
by: Zhang, D., et al.
Published: (2010)
by: Zhang, D., et al.
Published: (2010)
Process investigation, electrochemical characterization and optimization of LiFePO4/C composite from mechanical activation using sucrose as carbon source
by: Wang, K., et al.
Published: (2009)
by: Wang, K., et al.
Published: (2009)
Electrospun ternary composite metal oxide fibers as an anode for lithium-ion batteries
by: Ling, Jin Kiong, et al.
Published: (2022)
by: Ling, Jin Kiong, et al.
Published: (2022)
Combustion-derived nanocrystalline LiMn2O4 as a promising cathode material for lithium-ion batteries
by: Gao, X., et al.
Published: (2015)
by: Gao, X., et al.
Published: (2015)
Sulfur-nickel foam as cathode materials for lithium-sulfur batteries
by: Cheng, J., et al.
Published: (2015)
by: Cheng, J., et al.
Published: (2015)
Systematic study of Co-free LiNi0.9Mn0.07Al0.03O2 Ni-rich cathode materials to realize high-energy density Li-ion batteries
by: Seenivasan, Manojkumar, et al.
by: Seenivasan, Manojkumar, et al.
Spray-drying Al onto hydroxide precursors to prepare LiNi0.855Co0.095Al0.05O2 as a highly stable cathode for lithium-ion batteries
by: Seenivasan, Manojkumar, et al.
Published: (2022)
by: Seenivasan, Manojkumar, et al.
Published: (2022)
In-situ formed Li2O and an artificial protective layer on copper current collectors to enhance the cycling stability of lithium metal anode batteries
by: Darwaish, Kainat, et al.
Published: (2024)
by: Darwaish, Kainat, et al.
Published: (2024)
Spinel LiMn2O4 cathode and carbonaceous anode material for electrochemical energy storage lithium-ion battery
by: Zahoor, Ahmed
Published: (2021)
by: Zahoor, Ahmed
Published: (2021)
Structural and electrochemical properties of ZnO coated LiNiVO[4] for lithium ion batteries / Rajammal Karuppiah
by: Karuppiah, Rajammal
Published: (2009)
by: Karuppiah, Rajammal
Published: (2009)
Preparation and characterization of lithiated cathode materials for lithium batteries / Shanti Navaratnam
by: Navaratnam, Shanti
Published: (2001)
by: Navaratnam, Shanti
Published: (2001)
Preparation of g-C3N4/ZIF-8/PVDF–modified Li anode for all-solid-state Li metal batteries
by: Walle, Kumlachew Zelalem, et al.
Published: (2024)
by: Walle, Kumlachew Zelalem, et al.
Published: (2024)
Similar Items
-
In situ metal organic framework (ZIF-8) and Mechanofusion-Assisted MWCNT coating of LiFePO4/C composite material for lithium-ion batteries
by: Mathur, Priyatrisha, et al.
Published: (2023) -
In situ metal organic framework (ZIF-8) and mechanofusion-assisted MWCNT coating of LiFePO/C composite material for lithium-ion batteries
by: Mathur, Priyatrisha, et al.
Published: (2023) -
Mesoporous LiFePO4/C nanocomposite cathode materials for high power lithium ion batteries with superior performance
by: Wang, G., et al.
Published: (2010) -
MoO3 nanoparticle coatings on high-voltage 5 V LiNi0.5 Mn1.5 O4 cathode materials for improving lithium-ion battery performance
by: Wu, Zong-Han, et al.
Published: (2022) -
LATP ionic conductor and in-situ graphene hybrid-layer coating on LiFePO4 cathode material at different temperatures
by: Yang, Chun-Chen, et al.
Published: (2018)