| Distributor | Stock | Pricing | MOQ | PKG | Lead Time | Date Code | On Order Quantity | On Order Delivery | |
|---|---|---|---|---|---|---|---|---|---|
|
385 pcs
|
385 pcs | On Request | 1 | On Request | On Request | On Request | On Request | On Request |
| Category | |
| Manufacturer Name | |
| Current | |
| Drain to Source Voltage (Vdss) | |
| Drive Voltage (Max Rds On, Min Rds On) | |
| FET Type | |
| Gate Charge (Qg) (Max) @ Vgs | |
| Input Capacitance (Ciss) (Max) @ Vds | |
| Mounting Type | |
| Operating Temperature | |
| Power Dissipation (Max) | |
| Rds On (Max) @ Id, Vgs | |
| Supplier Device Package | |
| Tape & Reel | |
| Technology | |
| Vgs (Max) | |
| Vgs(th) (Max) @ Id |
The FDP5N50NZ is an N-Channel MOSFET from On Semiconductor designed for high-voltage switching applications. It features a drain-source voltage (Vdss) of 500V and a continuous drain current of 4.5A at case temperature (Tc). The maximum on-resistance is 1.5 Ohm at 2.25A drain current and 10V gate-source voltage, enabling efficient power handling.
With a gate charge of 12 nC at 10V and input capacitance of 440 pF at 25V, this MOSFET offers moderate switching performance suitable for power supply and inverter circuits. Maximum power dissipation is 78W at case temperature. The device operates over a junction temperature range of -55°C to 150°C.
The FDP5N50NZ is packaged in a TO-220-3 through-hole package, which allows for easy mounting on heatsinks. It is intended for use in applications such as switch-mode power supplies, motor control, and DC-DC converters. Compliance data indicates RoHS3 compliance, though this is unverified.
| Qty | Low | High |
|---|---|---|
| 1,000+ | $0.59 | $0.59 |
Estimated market price range - modelled values for guidance only, not live distributor offers.
500 V.
4.5 A at case temperature (Tc).
1.5 Ohm at 2.25 A drain current and 10 V gate-source voltage.
-55°C to 150°C (junction temperature).
TO-220-3 through-hole package.
It is listed as RoHS3 compliant, but this is unverified.
Maximum 12 nC at 10 V gate-source voltage.