NCID9210 onsemi, 2-Channel Digital Isolator 50 Mbps, 2 kV, 5.5 V, 16-Pin SOIC

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Subtotal (1 pack of 2 units)*

PHP814.58

(exc. VAT)

PHP912.32

(inc. VAT)

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Units
Per Unit
Per Pack*
2 - 8PHP407.29PHP814.58
10 - 98PHP364.875PHP729.75
100 - 248PHP299.045PHP598.09
250 - 498PHP284.535PHP569.07
500 +PHP255.525PHP511.05

*price indicative

Packaging Options:
RS Stock No.:
230-9050
Mfr. Part No.:
NCID9210
Manufacturer:
onsemi
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Brand

onsemi

Maximum Data Rate

50Mbps

Product Type

Digital Isolator

Number of Channels

2

Package Type

SOIC

Data Rate

50Mbps

Maximum Forward Voltage

5V

Power Dissipation

210mW

Propagation Delay Time

25ns

Maximum Input Current

2A

Isolation Voltage

2kV

Rise Time

1.1ns

Number of Pins

16

Mount Type

Surface

Supply Voltage

5.5 V

Maximum Operating Temperature

125°C

Minimum Operating Temperature

-40°C

Depth

3mm

Length

10.3mm

Standards/Approvals

DIN, UL, EN

Width

7.5 mm

Series

NCID

Package Style

SOIC

Automotive Standard

AEC-Q100

The ON Semiconductor series NCID9210 are galvanic ally isolated full duplex, bi−directional, high−speed dual−channel digital isolators. These devices support isolated communications thereby allowing digital signals to communicate between systems without conducting ground loops or hazardous voltages. They utilize ON Semiconductor patented galvanic off−chip capacitor isolation technology and optimized IC design to achieve high insulation and high noise immunity, characterized by high common mode rejection and power supply rejection specifications.

Performance of a Digital Isolator with safety of an optocoupler

DTI (Distance Through Insulation): ≥ 0.5 mm

Off−Chip Capacitive Isolation to Achieve Reliable High Voltage Insulation

Maximum Working Insulation Voltage: 2000 Vpeak

Better safety and long term reliability vs. other Digital Isolation methodologies.

Specifications Guaranteed Over 2.5 V to 5.5 V Supply Voltage and −40°C to 125°C Extended Temperature Range

Device performance across voltage and temperature is predictable and doesn't require overdesign

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