Features: • 0.5 MICRON CMOS Technology• High-speed, low-power CMOS replacement for ABT functions• Typical tSK(o) (Output Skew) < 250ps• Low input and output leakage 1A (max.)• ESD > 2000V per MIL-STD-883, Method 3015; > 200V using machine model (C = 200pF, R...
IDT74FCT162H952ET: Features: • 0.5 MICRON CMOS Technology• High-speed, low-power CMOS replacement for ABT functions• Typical tSK(o) (Output Skew) < 250ps• Low input and output leakage 1A (m...
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Symbol |
Description |
Max |
Unit |
VTERM(2) |
Terminal Voltage with Respect to GND |
0.5 to +7 |
V |
VTERM(3) |
Terminal Voltage with Respect to GND |
0.5 to VCC+0.5 |
V |
TSTG |
Storage Temperature |
65 to +150 |
°C |
IOUT |
DC Output Current |
60 to +120 |
mA |
NOTES:
1. Stresses greater than those listed under ABSOLUTE MAXIMUM RATINGS may cause permanent damage to the device. This is a stress rating only and functional operation of the device at these or any other conditions above those indicated in the operational sections of this specification is not implied. Exposure to absolute maximum rating conditions for extended periods may affect reliability.
2. All device terminals except FCT162XXX Output and I/O terminals.
3. Output and I/O terminals for FCT162XXX.
The IDT74FCT162H952ET 16-bit registered transceiver is built using advanced dual metal CMOS technology. These high-speed, low-power devices are organized as two independent 8-bit D-type registered transceivers with separate input and output control for independent control of data flow in either direction. For example, the A-to-B Enable (xCEAB) must be low to enter data from the A port. xCLKAB controls the clocking function. When xCLKAB toggles from low-to-high, the data present on the A port will be clocked into the register. xOEAB performs the output enable function on the B port. Data flow from the B port to A port is similar but requires using xCEBA, xCLKBA, and xOEBA inputs. Full 16-bit operation is achieved by tying the control pins of the independent transceivers together.
The IDT74FCT162H952ET has "Bus Hold" which retains the input's last state whenever the input goes to high impedance. This prevents "floating" inputs and eliminates the need for pull-up/down resistors.