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Friday, March 14, 2025

POSTECH’s Breakthrough in EV Battery Lifespan and Density


Professor Kyu-Younger Park of the Institute of Ferrous & Eco Supplies Know-how, Division of Supplies Science & Engineering, POSTECH led a analysis workforce that collaborated with Samsung SDI, Northwestern College, and Chung-Ang College to develop expertise that can considerably enhance the lifespan and power density of electrical automobile (EV) batteries. The research was just lately printed in ACS Nano.

POSTECH’s Breakthrough in EV Battery Lifespan and Density
Schematic Illustration of Energetic Materials Crack Restoration through Elastic Nano Spring. Picture Credit score: Pohang College of Science and Know-how

A battery utilized in electrical automobiles should proceed functioning even after being charged and drained quite a few instances. Nevertheless, the present expertise has a big drawback: the battery’s constructive lively components continually broaden and contract throughout the charging and discharging course of, resulting in small cracks contained in the battery.

The battery’s efficiency considerably declines with time. Researchers try to cease this by strengthening the cathode lively supplies or including reinforcing dopants, however these strategies will not be but viable.

The important thing to this discovery is the ‘nano-spring coating’ method, which might create elastic buildings. The researchers utilized a multi-walled carbon nanotube (MWCNT) on the floor of battery electrode supplies.

This absorbed pressure power is created throughout the charging and discharging processes, stopping cracks and limiting electrode thickness variations, therefore enhancing stability. The workforce efficiently and successfully managed cracks throughout the battery, extending its lifespan and enhancing efficiency.

This strategy reduces resistance brought on by quantity variations within the materials utilizing solely a small quantity (0.5wt%, weight proportion) of conductive materials. It will possibly obtain a excessive power density of 570 Wh/kg or greater. It additionally has a excessive longevity, with 78% of the preliminary battery capability remaining after 1,000 cost and discharge cycles or extra.

This method, particularly, could also be simply built-in into present battery manufacturing processes, permitting for fast scale manufacturing and commercialization. This development is more likely to surpass present restrictions in battery expertise, paving the best way for extra environment friendly and long-lasting EV batteries, which can assist design superior electrical automobiles.

With a distinct strategy from present ones, this analysis successfully managed adjustments that would happen to a battery throughout the charging and discharging course of. This expertise might be extensively used not solely within the secondary battery business but in addition in varied industries the place materials sturdiness is necessary.

Kyu-Younger Park, Professor, Pohang College of Science and Know-how

This analysis was funded by Samsung SDI, the Ministry of Commerce, Trade, and Vitality, and the Ministry of Science and Data Know-how’s primary analysis fund.

Journal Reference:

Lim, J.-H. et. al. (2025) Enhancing Mechanical Resilience in Li-Ion Battery Cathodes with Nanoscale Elastic Framework Coatings. ACS Nano. doi.org/10.1021/acsnano.4c14980

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