STW18N60M2 - 650V 18A N-Channel Power MOSFET | STMicroelectronics
MPN: STW18N60M2 ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $3.25 | $3.25 |
| 10 | $2.92 | $29.20 |
| 100 | $2.6 | $260.00 |
| 500 | $2.34 | $1,170.00 |
| 1,000 | $2.08 | $2,080.00 |
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Request AlternativesSTW18N60M2 Maximum Ratings & Electrical Characteristics
| Polarity | N-Channel |
| Breakdown Voltage (VDS) | 650 V |
| Continuous Drain Current (ID) at 25°C | 18 A |
| On-Resistance (RDS(on)) at VGS=10V, ID=9A | 0.19 ohm (typical) |
| Gate Charge (Qg) | 45 nC |
| Avalanche Energy (EAS) | 700 mJ |
| Operating Junction Temperature | -55°C to +150°C |
| Package | TO-247 |
| Mounting Type | Through-Hole |
| Junction-to-Case Thermal Resistance (RthJC) | 0.6 °C/W |
| Technology | MDmesh M2 |
| Gate-Source Voltage (VGS) | ±25 V |
| Drain-Source Voltage (VDS) Maximum | 650 V |
| Continuous Drain Current (ID) at 100°C | [DATA_NEEDED: Continuous Drain Current at 100°C] |
| Power Dissipation (PD) | [DATA_NEEDED: Power Dissipation] |
| RoHS Status | Compliant |
STW18N60M2 Pin Configuration
| Pin 1 | Gate — Gate terminal for controlling the MOSFET |
| Pin 2 | Drain — Drain terminal, connected to the load |
| Pin 3 | Source — Source terminal, connected to ground |
Safe Operating Area
Typical Applications
STW18N60M2 is suitable for 6 applications: Switch-Mode Power Supplies (SMPS), Power Factor Correction (PFC), High-Frequency DC-DC Converters, Solar Inverters, Motor Drives, Welding Equipment.
Switch-Mode Power Supplies (SMPS)
The STW18N60M2 is ideal for SMPS primary-side switching due to its 650V breakdown voltage and 18A current rating. Its low on-resistance of 0.19 ohm minimizes conduction losses, improving efficiency. The fast switching characteristics reduce EMI, and the high avalanche energy of 700 mJ ensures robustness against voltage spikes. In a typical SMPS, the MOSFET is driven by a PWM controller, with a gate drive voltage of 10V to achieve lowest RDS(on). Proper snubber circuits are recommended to manage switching transients.
Recommended
Power Factor Correction (PFC)
In PFC circuits, the STW18N60M2 operates in boost converter topology to shape input current. Its low gate charge of 45 nC reduces driver losses, and the MDmesh M2 technology ensures low switching losses at high frequencies. The device's high voltage rating of 650V provides ample margin for boost voltages up to 400V. The fast body diode with low reverse recovery charge minimizes losses during continuous conduction mode. Designers should ensure adequate heat sinking due to power dissipation in continuous operation.
Recommended
High-Frequency DC-DC Converters
The STW18N60M2 is suitable for high-frequency DC-DC converters, such as flyback and forward topologies, where its low gate charge and fast switching reduce switching losses. The device's low on-resistance improves efficiency at high currents. In a typical application, the MOSFET is used as the primary switch, with a gate driver providing 10V to achieve full enhancement. The TO-247 package's low thermal resistance of 0.6°C/W allows efficient heat dissipation, enabling high power density designs.
Recommended
Solar Inverters
In solar inverters, the STW18N60M2 is used in DC-AC conversion stages. Its 650V rating is suitable for 400V DC bus voltages, and the low on-resistance minimizes conduction losses, improving overall system efficiency. The high avalanche energy ensures reliability during fault conditions. The device's wide operating temperature range of -55°C to +150°C makes it suitable for outdoor installations. Proper gate drive and protection circuits are essential for reliable operation.
Recommended
Motor Drives
The STW18N60M2 can be used in motor drive applications, such as variable frequency drives (VFDs), where it handles high voltage and current. Its fast switching characteristics reduce switching losses, and the low on-resistance improves efficiency. The device's ruggedness against avalanche events ensures reliability in inductive load switching. In a typical motor drive, the MOSFET is used in the inverter stage, with gate drivers providing appropriate voltage levels. Thermal management is critical due to continuous operation.
Recommended
Welding Equipment
In welding equipment, the STW18N60M2 is used in the power stage to control high currents. Its 18A continuous current rating and 650V breakdown voltage make it suitable for inverter-based welders. The low on-resistance reduces heat generation, and the high avalanche energy ensures robustness against load transients. The device's fast switching enables high-frequency operation, reducing transformer size. Proper heat sinking is essential due to high power dissipation.
Recommended
Recommended Products Summary
Engineering reference data for STW18N60M2 — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | STW18N60M2-1 |
|---|---|---|
| Package | TO-247 | TO-262 |
| Brand | STMicroelectronics | STMicroelectronics |
| Breakdown Voltage | 650 V | 650 V |
| Continuous Drain Current (25°C) | 18 A | 18 A |
| On-Resistance (typical) | 0.19 ohm | 0.19 ohm |
| Gate Charge | 45 nC | 45 nC |
| Avalanche Energy | 700 mJ | 700 mJ |
| Operating Temperature | -55°C to +150°C | -55°C to +150°C |
Key Differentiators
- Low on-resistance of 0.19 ohm (vs STW18N60M2-1)
- High avalanche energy of 700 mJ (vs STW18N60M2-1)
- MDmesh M2 technology (vs STW18N60M2-1)
Design Notes
The STW18N60M2 has a junction-to-case thermal resistance of 0.6°C/W. For a power dissipation of 100W, the junction temperature rise is 60°C above case temperature. Ensure adequate heatsinking to keep junction temperature below 150°C. Use thermal interface material and proper mounting torque for TO-247 packages.
For TO-247 through-hole mounting, ensure the PCB has adequate copper area for heat dissipation. Place the MOSFET near the heatsink and use short, wide traces for high-current paths. Add a gate resistor (typically 10 ohm) to dampen oscillations and reduce EMI. Keep the gate drive loop short to minimize inductance.
Do not exceed the maximum gate-source voltage of ±25V. Use a gate driver that provides 10V to achieve lowest on-resistance. The device is not internally protected against overcurrent, so external current sensing and protection are required. Add a snubber circuit across drain-source to manage voltage spikes during switching.
Compliance Information
RoHS compliant per STMicroelectronics product page. Other compliance data not provided.