UCC27444QDGNRQ1

Texas Instruments
595-UCC27444QDGNRQ1
UCC27444QDGNRQ1

Mfr.:

Description:
Gate Drivers Automotive 4-A dual- channel low-side ga

ECAD Model:
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In Stock: 3.494

Stock:
3.494 Can Dispatch Immediately
Factory Lead Time:
12 Weeks Estimated factory production time for quantities greater than shown.
Minimum: 1   Multiples: 1
Unit Price:
-,-- €
Ext. Price:
-,-- €
Est. Tariff:

Pricing (EUR)

Qty. Unit Price
Ext. Price
1,14 € 1,14 €
0,833 € 8,33 €
0,755 € 18,88 €
0,669 € 66,90 €
0,628 € 157,00 €
0,604 € 302,00 €
0,562 € 562,00 €
0,548 € 2.192,00 €
0,541 € 4.057,50 €

Product Attribute Attribute Value Select Attribute
Texas Instruments
Product Category: Gate Drivers
RoHS:  
Automotive High-Speed Gate Drivers
Low-Side
SMD/SMT
HVSSOP-8
2 Driver
2 Output
4 A, 4 A
4.5 V
18 V
Non-Inverting
11 ns
7 ns
- 40 C
+ 125 C
UCC27444
Brand: Texas Instruments
Logic Type: CMOS, TTL
Operating Supply Current: 45 mA
Output Voltage: 0 V to 18 V
Product Type: Gate Drivers
Propagation Delay - Max: 50 ns, 52 ns
Shutdown: No Shutdown
Factory Pack Quantity: 2500
Subcategory: PMIC - Power Management ICs
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Attributes selected: 0

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CNHTS:
8542391090
CAHTS:
8542390000
USHTS:
8542390090
MXHTS:
8542399999
ECCN:
EAR99

UCC27442-Q1 High-Speed Low-Side Gate Driver

Texas Instruments UCC27442-Q1 Dual-Channel High-Speed Low-Side Gate Driver can drive MOSFET and GaN power switches effectively. UCC27442-Q1 has a typical peak drive strength of 4A, which reduces the rise and fall times of the power switches, lowering switching losses and increasing efficiency. The UCC27442-Q1 fast propagation delay (18ns typical) yields better power stage efficiency by improving the deadtime optimization, pulse width utilization, control loop response, and transient performance of the system.

UCC27444/UCC27444-Q1 4A Low-Side Gate Driver

Texas Instrument UCC27444/UCC27444-Q1 4A Low-Side Gate Driver is a high-speed, dual-channel, low-side gate driver that effectively drives MOSFET and GaN power switches. UCC27444/UCC27444-Q1 has a typical peak drive strength of 4A, which reduces the rise and fall times of the power switches, increases efficiency, and lowers switching losses. The device’s fast propagation delay (18ns typical) yields better power stage efficiency by improving the pulse width utilization, deadtime optimization, control loop response, and transient performance of the system.