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February 19, 2026Batteries2 citationsOpen Access

Strategies for Enhancing Battery Life Under Fast Charging: Insights from NMC-Based Cell Cycling

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SISaiful IslamPBPete BarnesBPBumjun Park

Key Points

  • The study aims to identify optimal charging conditions that enhance battery life and performance during fast charging.
  • Evaluated multilayer Gr/NMC811 cells under varying depths of discharge (68%, 84%, 100%)
  • Tested upper charge cutoff voltages of 4.1–4.2 V
  • Incorporated post-charge rest periods of 2–30 minutes
  • Used a 20-minute fast charging protocol for up to 500 cycles
  • Higher depths of discharge improved battery life and performance under fast charging
  • Lower upper charge cutoff voltages mitigated degradation
  • A brief 2-minute rest after charging further reduced aging effects
  • Primary aging modes included loss of lithium inventory and cathode active material

Abstract

Fast charging improves the usability of consumer electronics and electric vehicles (EVs) by reducing range anxiety and downtime but accelerates battery degradation and raises safety concerns. Optimizing operational conditions during fast-charging is critical to mitigating aging and ensuring safety. This study evaluated multilayer Gr/NMC811 cells under various conditions, including depths of discharge (DODs of 68%, 84%, and 100%), upper charge cutoff voltages (4.1–4.2 V), and post-charge rest periods (2–30 min), using a 20 min fast charging protocol for up to 500 cycles (up to 150,000 miles of EV use assuming 3.3 mi/kWh vehicle level energy efficiency). Surprisingly, higher DODs under fast charging improved battery life and performance compared to lower DODs. Reducing the upper charge cut-off voltage helped mitigate degradation. A brief 2 min rest period after charging further reduced aging effects. The primary aging modes were loss of lithium inventory and cathode active material. Although minor lithium plating was observed within 500 cycles, it did not affect performance significantly. These findings suggest that, with optimized conditions, cells can sustain hundreds of fast charge cycles—equivalent to over 100,000 miles of EV use—without significant adverse effects on performance or longevity.

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Cite This Study

Islam et al. (2026) studied this question.

synapsesocial.com/papers/6996a898ecb39a600b3ef78ehttps://doi.org/10.3390/batteries12020073
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