| Aluminum Electrolytic | About 0.1 µF to 100,000 µF | Commonly 6.3 V to 500 V | Usually polarized | High capacitance per unit cost; relatively high leakage current and equivalent series resistance (ESR); finite operating life that is affected by temperature and ripple current. | Power-supply smoothing, DC-link support, and low-frequency energy storage. | Check rated voltage, ripple-current rating, ESR, temperature rating, physical size, and expected service life. Observe polarity. |
| Tantalum | About 0.1 µF to 1,000 µF | Commonly 2.5 V to 50 V | Polarized | Compact and offers relatively stable capacitance; can be sensitive to surge current, reverse voltage, and excessive voltage stress. | Compact electronics, local decoupling, and space-constrained power rails. | Allow suitable voltage margin and follow the manufacturer's guidance for surge protection and current limiting. Observe polarity. |
| Multilayer Ceramic (MLCC) | About 1 pF to 100 µF, depending on dielectric, size, and voltage rating | From a few volts to several kilovolts, depending on the part | Non-polarized | Low ESR and inductance, fast response, and long service life. High-capacitance Class II dielectrics can lose effective capacitance under DC bias and with temperature changes. | High-frequency bypassing, decoupling, timing, and compact general-purpose circuits. | Verify effective capacitance at the actual DC bias, temperature, and AC signal conditions; consider voltage rating, dielectric, and mechanical stress. |
| Film | About 1 nF to 100 µF | Commonly tens of volts to several kilovolts | Generally non-polarized | Low dielectric loss, good stability, and suitability for AC or pulse service; larger and often more expensive than ceramic capacitors at comparable capacitance. | AC filtering, motor-run circuits, audio signal paths, pulse circuits, and snubbers. | Check AC voltage, pulse-current capability, permissible temperature, tolerance, and whether the design requires a safety-rated capacitor. |
| Supercapacitor (Electric Double-Layer Capacitor) | About 0.1 F to several thousand farads | Typically around 2.7 V per cell; higher system voltages require cells in series | Usually polarized | Extremely high capacitance and useful energy storage over short periods; lower cell voltage, higher leakage, and greater voltage-dependent behavior than conventional capacitors. | Short-term backup, memory hold-up, energy buffering, and brief power assistance. | Check cell voltage limits, balancing requirements for series strings, leakage current, ESR, charging current, and the required backup time. |