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Dongguk University Researchers Advance Lithium-Ion Battery Technology with Hybrid Anode Material
April 14, 2025 | PRNewswireEstimated reading time: 2 minutes
Researchers from Dongguk University have achieved a significant breakthrough in lithium-ion battery technology by developing a novel hybrid anode material. This innovative study introduces a hierarchical heterostructure composite that optimizes material interfaces at the nanoscale, resulting in remarkable enhancements in energy storage capacity and long-term cycling stability. This engineered structure integrates graphene oxide's superior conductivity with the energy storage capabilities of nickel-iron compounds for future electronics and energy solutions.
Lithium-ion batteries are the dominant energy storage technology powering everything from portable electronics to electric vehicles and renewable energy systems. However, the demand for higher energy density, faster charging, and longer lifespans necessitates continuous innovation.
Researchers, led by Professor Jae-Min Oh of Dongguk University, in collaboration with Seung-Min Paek of Kyungpook National University, are addressing these challenges by engineering materials at the nanoscale. Their work, available online on January 28, 2025, and published in volume 506 of the Chemical Engineering Journal on January 15, 2025, focuses on a novel hybrid material designed to maximize the synergistic effects of its components. This innovative composite is a hierarchical heterostructure that combines reduced graphene oxide (rGO) with nickel-iron layered double hydroxides (NiFe-LDH). This unique composite leverages the properties of its components: rGO provides a conductive network for electron transport, and the nickel-iron-oxide components enable fast charge storage through a pseudocapacitive mechanism. The key to this innovative design is the abundance of grain boundaries, which facilitate efficient charge storage.
To achieve the final composite, the researchers employed a layer-by-layer self-assembly technique using polystyrene (PS) bead templates. First, the PS beads were coated with GO and NiFe-LDH precursors. The templates were then removed, leaving behind a hollow sphere architecture. Following this, a controlled thermal treatment induced a phase transformation in NiFe-LDH, leading to the formation of nanocrystalline nickel-iron oxide (NiFe₂O₄) and amorphous nickel oxide (a-NiO), while simultaneously reducing GO to rGO. This synthesis resulted in a well-integrated hybrid composite (rGO/NiFe₂O₄/a-NiO), with enhanced conductivity making it an efficient anode material for lithium-ion batteries. This hollow structure prevents direct contact between the a-NiO/NiFe₂O₄ nanoparticles and the electrolyte, improving stability.
Advanced characterization techniques, such as X-ray diffraction and transmission electron microscopy, were then used to confirm the composite's formation. Electrochemical tests revealed the material's exceptional performance as a lithium-ion battery anode. The anode demonstrated a high specific capacity of 1687.6 mA h g−1 at a current density of 100 mA g−1 after 580 cycles, surpassing conventional materials and highlighting its excellent cycling stability. Furthermore, the material exhibited good rate performance, maintaining high capacity even at significantly increased charge/discharge rates.
Professor Seung-Min Paek emphasized the collaborative nature of the research, "This breakthrough was made possible through close cooperation between experts in diverse materials. By combining our strengths, we were able to design and optimize this hybrid system more effectively. "
Professor Jae-Min Oh added, "We anticipate that, in the near future, energy storage materials will move beyond simply improving individual components. Instead, they will involve multiple interacting materials that create synergy, resulting in more efficient and reliable energy storage devices. This research offers a pathway to smaller, lighter, and more efficient energy storage for next-generation electronic devices."
This development targets significantly improved batteries (longer life, faster charge, lighter) within 5-10 years, benefiting both device users and sustainable energy initiatives.
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Hitachi Unveils $1B U.S. Investment in Critical Grid Infrastructure
09/05/2025 | Hitachi EnergyHitachi Energy, a wholly owned subsidiary of Hitachi, Ltd., and global leader in electrification, today announced a historic investment of more than $1 billion USD to expand the production of critical electrical grid infrastructure in the United States.
Ferric Launches New Integrated Voltage Regulator for AI and High-Performance Processors
08/27/2025 | BUSINESS WIREFe1766 delivers an unprecedented 160 A in the industry’s smallest IVR footprint, redefining chip-level and system-level power delivery for the AI era.
Tigo Energy Initiates ‘Made in the USA’ Manufacturing Partnership With EG4 Electronics Share
08/27/2025 | BUSINESS WIRETigo Energy, Inc announced a manufacturing and marketing partnership with EG4 Electronics to produce Tigo optimized inverters and Module Level Power Electronics (MLPE) together with EG4 solar inverters in the United States of America.
SINBON Celebrates Opening of New US Manufacturing Facility
08/21/2025 | PRNewswireLeading electronics system integrator SINBON Electronics Co., Ltd. held an opening ceremony on August 18 to celebrate its new 59,000-square-foot facility in Clayton, Ohio.
How Good Design Enables Sustainable PCBs
08/21/2025 | Gerry Partida, Summit InterconnectSustainability has become a key focus for PCB companies seeking to reduce waste, conserve energy, and optimize resources. While many discussions on sustainability center around materials or energy-efficient processes, PCB design is an often overlooked factor that lies at the heart of manufacturing. Good design practices, especially those based on established IPC standards, play a central role in enabling sustainable PCB production. By ensuring designs are manufacturable and reliable, engineers can significantly reduce the environmental impact of their products.