UCC27311ADRCR

Texas Instruments
595-UCC27311ADRCR
UCC27311ADRCR

Mfr.:

Description:
Gate Drivers 120V 4A half-bridge driver with 8V UVLO

Lifecycle:
New Product:
New from this manufacturer.
ECAD Model:
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In Stock: 2.602

Stock:
2.602 Can Dispatch Immediately
Factory Lead Time:
18 Weeks Estimated factory production time for quantities greater than shown.
Minimum: 1   Multiples: 1
Unit Price:
Rp-
Ext. Price:
Rp-
Est. Tariff:
Packaging:
Full Reel (Order in multiples of 3000)

Pricing (IDR)

Qty. Unit Price
Ext. Price
Cut Tape / MouseReel™
Rp60.909 Rp60.909
Rp39.627 Rp396.270
Rp36.325 Rp908.125
Rp31.188 Rp3.118.800
Rp29.354 Rp7.338.500
Rp25.684 Rp12.842.000
Rp23.850 Rp23.850.000
Full Reel (Order in multiples of 3000)
Rp19.997 Rp59.991.000
Rp19.630 Rp117.780.000
† A MouseReel™ fee of Rp98.000 will be added and calculated in your basket. All MouseReel™ orders are non-cancellable and non-returnable.

Product Attribute Attribute Value Select Attribute
Texas Instruments
Product Category: Gate Drivers
RoHS:  
Gate Drivers
Half-Bridge
SMD/SMT
VSON-10
2 Driver
2 Output
4.5 A, 3.7 A
8 V
17 V
Non-Inverting
7.2 ns
5.5 ns
- 40 C
+ 125 C
UCC27311A
Reel
Cut Tape
MouseReel
Brand: Texas Instruments
Country of Assembly: Not Available
Country of Diffusion: Not Available
Country of Origin: CN
Logic Type: CMOS, TTL
Maximum Turn-Off Delay Time: 17 ns
Maximum Turn-On Delay Time: 17 ns
Operating Supply Current: 3 mA
Product Type: Gate Drivers
Propagation Delay - Max: 42 ns
Shutdown: Shutdown
Factory Pack Quantity: 3000
Subcategory: PMIC - Power Management ICs
Technology: SiC
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Attributes selected: 0

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USHTS:
8542390090
MXHTS:
8542399999
ECCN:
EAR99

UCC27311A/UCC27311A-Q1 Half-Bridge Drivers

Texas Instruments UCC27311A/UCC27311A-Q1 Half-Bridge Drivers are robust gate drivers designed to drive two N-channel MOSFETs in a half-bridge or synchronous buck configuration with an absolute maximum bootstrap voltage of 120V. Its 3.7A peak source and 4.5A peak sink current capability allow the UCC27311A/UCC27311A-Q1 to drive large power MOSFETs with minimized switching losses during the transition through the Miller Plateau. The switching node (HS pin) can handle the negative transient voltage, protecting the high-side channel from inherent negative voltages caused by stray capacitance and parasitic inductance.