UCC21520
5.7kVRMS 4A/6A dual-channel isolated gate driver with dual input and disable pin in DW package
A newer version of this product is available
UCC21520
- Junction temperature range –40 to +150°C
- Switching parameters:
- 33ns typical propagation delay
- 20ns minimum pulse width
- 6ns maximum pulse-width distortion
- Common-mode transient immunity (CMTI) greater than 125V/ns
- Surge immunity up to 10kV
- 4A peak source, 6A peak sink output
- 3V to 18V input VCCI range to interface with both digital and analog controllers
- Up to 25V VDD output drive supply
- 5V and 8V VDD UVLO options
- Programmable overlap and dead time
- Fast disable for power sequencing
- Safety-related certifications (planned):
- 8000VPK reinforced Isolation per DIN EN IEC 60747-17 (VDE 0884-17)
- 5.7kVRMS isolation for 1 minute per UL 1577
- CQC certification per GB4943.1-2022
The UCC21520 is an isolated dual-channel gate driver with 4A source and 6A sink peak current. It is designed to drive power MOSFETs, IGBTs, and SiC MOSFETs up to 5MHz.
The input side is isolated from the two output drivers by a 5.7kVRMS reinforced isolation barrier, with a minimum of 125V/ns common-mode transient immunity (CMTI). Internal functional isolation between the two secondary-side drivers allows a working voltage of up to 1500VDC.
Every driver can be configured as two low-side drivers, two high-side drivers, or a half-bridge driver with programmable dead time (DT). A disable pin shuts down both outputs simultaneously when it is set high, and allows normal operation when left open or grounded. As a fail-safe measure, primary-side logic failures force both outputs low.
Each device accepts VDD supply voltages up to 25V. A wide input VCCI range from 3V to 18V makes the driver suitable for interfacing with both analog and digital controllers. All supply voltage pins have under voltage lock-out (UVLO) protection.
With all these advanced features, the UCC21520 enables high efficiency, high power density, and robustness.
Each device accepts VDD supply voltages up to 25 V. A wide input VCCI range from 3 V to 18 V makes the driver suitable for interfacing with both analog and digital controllers. All supply voltage pins have under voltage lock-out (UVLO) protection.
With all these advanced features, the UCC21520 and the UCC21520A enable high efficiency, high power density, and robustness in a wide variety of power applications.
Technical documentation
Design & development
For additional terms or required resources, click any title below to view the detail page where available.
TIEVM-VIENNARECT — Vienna rectifier-based three-phase power factor correction evaluation module using C2000™ MCUs
UCC21520EVM-286 — UCC21520 4A/6A isolated dual-channel gate driver evaluation module
UCC21520EVM-286 is designed for evaluating UCC21520DW, which is an isolated dual-channel gate driver with 4-A source and 6-A sink peak current capability. This EVM could be served as a reference design for driving power MOSFETS, IGBTS, and SiC MOSFETS with UCC21520 pin function identification, (...)
PSPICE-FOR-TI — PSpice® for TI design and simulation tool
TIDM-1000 — Vienna Rectifier-Based Three Phase Power Factor Correction Reference Design Using C2000 MCU
TIDA-01540 — Three-Phase Inverter Reference Design Using Gate Driver With Built-in Dead Time Insertion
TIDA-01541 — High-Bandwidth Phase Current and DC-Link Voltage Sensing Reference Design for Three-Phase Inverters
TIDA-01159 — Compact, Half-Bridge, Reinforced Isolated Gate Drive Reference Design
Package | Pins | CAD symbols, footprints & 3D models |
---|---|---|
SOIC (DW) | 16 | Ultra Librarian |
Ordering & quality
- RoHS
- REACH
- Device marking
- Lead finish/Ball material
- MSL rating/Peak reflow
- MTBF/FIT estimates
- Material content
- Qualification summary
- Ongoing reliability monitoring
- Fab location
- Assembly location
Recommended products may have parameters, evaluation modules or reference designs related to this TI product.
Support & training
TI E2E™ forums with technical support from TI engineers
Content is provided "as is" by TI and community contributors and does not constitute TI specifications. See terms of use.
If you have questions about quality, packaging or ordering TI products, see TI support.