| Multilayer Ceramic Capacitor (MLCC) | Approximately 1 pF to 100 µF, depending on dielectric, case size, and rated voltage | Typically 6.3 V to 3,000 V | High-frequency ripple is generally handled well; allowable current depends on package size, temperature, and frequency | Very low ESR and ESL; suitable for high-frequency noise suppression | Motor-driver decoupling, sensor filtering, control boards, communication modules, and high-frequency switching circuits | Account for DC-bias capacitance loss, mechanical cracking risk, temperature characteristics, and acoustic noise |
| Aluminum Electrolytic Capacitor | Approximately 1 µF to 100,000 µF | Typically 6.3 V to 630 V | Moderate to high ripple-current ratings are available; heating must be checked carefully | Higher ESR than ceramic and film types; ESR increases as temperature decreases and with aging | DC-link energy buffering, power-supply smoothing, servo-drive bus filtering, and bulk storage | Check ripple current, expected lifetime, ambient temperature, mounting orientation, polarity, and maximum inrush current |
| Conductive Polymer Capacitor | Approximately 2.2 µF to 2,700 µF | Typically 2.5 V to 100 V | High ripple-current capability relative to size; verify the specified thermal limits | Low and stable ESR, providing effective transient response and output-voltage control | Compact DC-DC converters, embedded controllers, battery-powered robot electronics, and low-voltage motor-control rails | Confirm voltage derating, leakage current, temperature rating, reverse-voltage protection, and required capacitance at operating bias |
| Film Capacitor | Approximately 1 nF to 1,000 µF | Typically 50 V to 2,000 V or higher, depending on construction | Very good pulse and high-frequency ripple performance; current is limited by temperature rise and construction | Very low ESR and low dielectric loss; stable under repetitive pulses | Motor inverter snubbers, EMI filters, regenerative-braking circuits, resonant converters, and precision timing networks | Evaluate physical size, pulse voltage, dv/dt rating, self-healing behavior, temperature range, and mechanical vibration resistance |
| Electric Double-Layer Capacitor (Supercapacitor) | Approximately 0.1 F to several thousand farads per cell | Usually about 2.3 V to 3.0 V per cell; series balancing is required for higher system voltages | Very high short-duration current capability; continuous current depends on ESR and thermal limits | Low ESR for high-power bursts, but higher leakage current than conventional capacitors | Emergency actuator movement, peak-load support, energy recovery, power-fail ride-through, and robotic braking systems | Calculate usable energy using voltage limits, include cell balancing, control leakage, and provide overvoltage protection |
| Tantalum Capacitor | Approximately 0.1 µF to 2,200 µF | Typically 2.5 V to 125 V | Moderate ripple-current capability; high ripple and surge conditions require careful verification | Low to moderate ESR; polymer versions generally provide lower ESR than conventional versions | Space-constrained control electronics, stable low-voltage rails, and compact embedded modules | Use conservative voltage derating, limit surge current, observe polarity, and assess failure-mode requirements |