Lithium-Ion NMC Rechargeable | 3.6–3.7 V per cell | 150–250 Wh/kg | 2–5 years stored at partial charge and moderate temperature | Generally not as a full-charge, ready-to-use pack; possible with controlled storage and capacity management | Yes, for cells and batteries offered for transport | IP65–IP67, enclosure-dependent | Portable instruments, robotics, medical equipment, backup systems | Requires BMS, thermal protection, over-charge protection, and transport documentation |
Lithium Iron Phosphate (LiFePO4) Rechargeable | 3.2–3.3 V per cell | 90–160 Wh/kg | 3–8 years under suitable storage conditions | Potentially yes for low-rate standby designs with periodic maintenance | Yes, for cells and batteries offered for transport | IP65–IP67, enclosure-dependent | Solar storage, telecom backup, industrial equipment, mobility systems | Good thermal stability and cycle life; pack life depends strongly on temperature and state of charge |
Lithium-Titanate (LTO) Rechargeable | 2.3–2.4 V per cell | 50–90 Wh/kg | 5–10 years in controlled standby service | Often feasible for long-life industrial systems when correctly maintained | Yes, for cells and batteries offered for transport | IP65–IP67, enclosure-dependent | Fast-charge vehicles, grid support, harsh-environment equipment | Very high cycle capability and low-temperature performance; lower energy density and higher cost are common trade-offs |
Lithium-Thionyl Chloride (Li-SOCl2) Primary | 3.6 V per cell | 400–700 Wh/kg | 10–20 years, depending on cell design and storage conditions | Yes; one of the leading chemistries for long-life, low-drain devices | Yes, when shipped as a lithium metal cell or battery | IP67–IP68, pack and potting dependent | Remote meters, utility monitoring, alarms, tracking devices | Excellent low-rate service life; pulse loads may require a capacitor or hybrid pulse design |
Lithium Manganese Dioxide (Li-MnO2) Primary | 3.0 V per cell | 200–330 Wh/kg | 5–10 years, depending on format and temperature | Possible for low-drain products with validated leakage and capacity retention | Yes, when shipped as a lithium metal cell or battery | IP65–IP67, pack and enclosure dependent | Cameras, medical devices, emergency equipment, memory backup | Good shelf life and pulse capability; lithium-metal transport rules must be reviewed |
Nickel-Metal Hydride (NiMH) Rechargeable | 1.2 V per cell | 60–120 Wh/kg | 1–3 years before recharge may be needed | Generally no without periodic recharge and capacity verification | Not normally subject to UN 38.3 as a non-lithium chemistry; other transport rules may apply | IP54–IP67, enclosure-dependent | Emergency lighting, handheld equipment, industrial instruments | Lower environmental concerns than cadmium-based systems; relatively high self-discharge unless low-self-discharge cells are used |
Nickel-Cadmium (NiCd) Rechargeable | 1.2 V per cell | 40–60 Wh/kg | 3–5 years in proper storage, with periodic maintenance where required | Not typically a maintenance-free 10-year shelf-life solution | Not normally subject to UN 38.3 as a non-lithium chemistry; regulations on cadmium and disposal apply | IP54–IP67, enclosure-dependent | Aviation, rail, emergency systems, high-temperature industrial equipment | Strong high-rate and low-temperature performance; cadmium restrictions are important in many markets |
Alkaline Manganese Dioxide Primary | 1.5 V per cell | 80–150 Wh/kg | 5–10 years under cool, dry storage | Possible for selected low-drain products, but datasheet validation is required | No, generally not a lithium battery; verify applicable air, sea, and ground rules | IP54–IP67 for a sealed device, not for the bare cell | Consumer electronics, sensors, alarms, emergency products | Widely available and economical; performance decreases at high drain and extreme temperatures |
Silver-Oxide Primary | 1.55 V per cell | Typically 100–130 Wh/kg | 3–10 years, depending on button-cell construction and storage | Possible for compact, low-drain products with verified capacity retention | No, generally not a lithium battery; button-cell packaging and safety rules still apply | IP54–IP67 for the finished device; the bare cell is not IP-rated | Watches, precision instruments, medical and measuring devices | Stable voltage and compact size; higher material cost and limited high-drain capability |
Zinc-Air Primary | 1.4 V nominal | 300–400 Wh/kg, system-dependent | Typically 2–5 years sealed before activation; shorter after air access | Generally no after activation; sealed storage life depends on seal integrity | No, generally not a lithium battery; confirm requirements for the finished product | IP54–IP67 for the device; air access must remain functional | Hearing instruments, specialty sensors, low-power medical devices | High practical energy density, but humidity, airflow, activation time, and operating orientation affect performance |