Anterwell Technology Ltd.
Large Original stock of IC Electronics Components, Transistors, Diodes etc.
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Forward Voltage: | 1.25 V | VF Temperature Coefficient: | - 2.2 MV/°C |
---|---|---|---|
Reverse Current: | 1.0 µA | Junction Capacitance: | 15 PF |
Dynamic Resistance: | 6.0 Ω | Open Circuit Voltage: | 500 MV |
Highlight: | small scale integrated circuits,integrated components |
Linear Optocoupler, High Gain Stability, Wide Bandwidth
Features
• Couples AC and DC signals
• 0.01 % Servo Linearity
• Wide Bandwidth, > 200 kHz
• High Gain Stability, ± 0.05 %/ °C
• Low Input-Output Capacitance
• Low Power Consumption, < 15 mW
• Isolation Test Voltage, 5300 VRMS, 1.0 sec.
• Internal Insulation Distance, > 0.4 mm for VDE
• Component in accordance to RoHS 2002/95/EC and WEEE 2002/96/EC
Agency Approvals
• UL File #E52744
• DIN EN 60747-5-2 (VDE0884)
DIN EN 60747-5-5 pending
Available with Option 1, Add -X001 Suffix
Applications
Power Supply Feedback Voltage/Current
Medical Sensor Isolation
Audio Signal Interfacing
Isolated Process Control Transducers
Digital Telephone Isolation
Description
The IL300 Linear Optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode in a bifurcated arrangement. The feedback photodiode captures a percentage of the LED’s flux and generates a control signal (IP1) that can be used to servo the LED drive current. This technique compensates for the LED’s non-linear, time, and temperature characteristics. The output PIN photodiode produces an output signal (IP2) that is linearly related to the servo optical flux created by the LED. The time and temperature stability of the input-output coupler gain (K3) is insured by using matched PIN photodiodes that accurately track the output flux of the LED.
Absolute Maximum Ratings
Tamb = 25 °C, unless otherwise specified Stresses in excess of the absolute Maximum Ratings can cause permanent damage to the device. Functional operation of the device is not implied at these or any other conditions in excess of those given in the operational sections of this document. Exposure to absolute Maximum Rating for extended periods of the time can adversely affect reliability.
Input | ||||
Parameter | Test condition | Symbol | Value | Unit |
Power dissipation | Pdiss | 160 | mW | |
Derate linearly from 25 °C | 2.13 | mW/°C | ||
Forward current | IF | 60 | mA | |
Surge current (pulse width < 10 µs) | IPK | 250 | mA | |
Reverse voltage | VR | 5.0 | V | |
Thermal resistance | Rth | 470 | K/W | |
Junction temperature | Tj | 100 | °C | |
Output | ||||
Power dissipation | Pdiss | 50 | mA | |
Derate linearly from 25 °C | 0.65 | mW/°C | ||
Reverse voltage | VR | 50 | V | |
Junction temperature | Tj | 100 | °C | |
Thermal resistance | Rth | 1500 | K/W | |
Coupler | ||||
Total package dissipation at 25 °C | Ptot | 210 | mW | |
Derate linearly from 25 °C | 2.8 | mW/°C | ||
Storage temperature | Tstg | - 55 to + 150 | °C | |
Operating temperature | Tamb | - 55 to + 100 | °C | |
Isolation test voltage | > 5300 | VRMS | ||
Isolation resistance | VIO = 500 V, Tamb = 25 °C | RIO | > 1012 | Ω |
VIO = 500 V, Tamb = 100 °C | RIO | > 1011 | Ω |
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