Why Lithium Batteries Degrade
A lithium battery loses capacity even when it is never used. The two mechanisms — calendar aging and cycle aging — are driven by two chemical processes: SEI growth and lithium plating.
Two kinds of aging
| Aging mode | What it is | Main accelerator |
|---|---|---|
| Calendar aging | Degradation over time, even with no use | High temperature, high state of charge (SOC) |
| Cycle aging | Degradation from each charge/discharge cycle | Depth of discharge, charge rate, temperature |
The two chemical culprits
- SEI growth. On first charge the electrolyte reacts with the anode to form a thin passivating layer — the solid electrolyte interphase. It is protective but grows slowly over time, consuming lithium and raising internal resistance. It grows fastest when the battery sits hot and at high SOC.
- Lithium plating. When a battery is charged fast or cold, lithium ions can deposit as metallic lithium on the anode instead of intercalating into it. Plated lithium is largely irreversible — it is lost capacity, and it can grow dendrites that risk internal shorting.
Capacity fade vs power fade
Degradation shows up two ways:
- Capacity fade — the battery stores less energy (Ah/Wh drops).
- Power fade — internal resistance rises, so the battery cannot deliver or accept current as fast (a CCA-style problem for a lithium pack's burst output).
Both matter, but for different applications — an EV cares about range (capacity), a power tool about burst (power).
What accelerates it, practically
- Heat — the single biggest accelerator; every chemistry degrades faster hot.
- High SOC — storing a battery at 100% (especially in heat) ages it faster than storing at 50%.
- Fast charging when cold — the classic lithium-plating condition.
- Deep cycling — shallower cycles extend cycle life; full 0–100% swings age it faster.
NMC and LFP differ in detail — LFP is generally more cycle-tolerant and safer under abuse, while NMC is more energy-dense but ages faster at high temperature and SOC. See LFP vs NMC vs LTO and SOC vs SOH.
The Author's Take
Position: The single highest-leverage habit for battery life is boring: don't store it hot and full. Heat plus 100% SOC is where lithium quietly dies.
Reasoning: SEI growth and plating are both accelerated by exactly the conditions users create accidentally — a laptop left plugged in at full charge in a warm room. The fix costs nothing and is rarely communicated clearly.
This is the author's editorial view, not a purchasing guarantee.
Sources
- Peer-reviewed literature on SEI formation and lithium plating (calendar vs cycle aging).
- Battery manufacturer technical references (NMC vs LFP degradation profiles).
- Cross-verified with BMS and cell-datasheet guidance on temperature and SOC limits.
Last reviewed: 2026-09-15