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74ABT16500 View Datasheet(PDF) - Fairchild Semiconductor

Part Name
Description
Manufacturer
74ABT16500 Datasheet PDF : 9 Pages
1 2 3 4 5 6 7 8 9
Skew
TA = −40°C to +85°C
TA = −40°C to +85°C
VCC = 4.5V–5.5V
VCC = 4.5V–5.5V
Symbol
Parameter
CL = 50 pF
18 Outputs Switching
CL = 250 pF
18 Outputs Switching
Units
(Note 14)
(Note 15)
Max
Max
tOSHL
(Note 16)
Pin to Pin Skew
HL Transitions
2.0
2.8
ns
tOSLH
(Note 16)
Pin to Pin Skew
LH Transitions
2.0
2.5
ns
tPS
(Note 17)
Duty Cycle
LH–HL Skew
2.0
2.8
ns
tOST
(Note 16)
Pin to Pin Skew
LH/HL Transitions
2.5
3.0
ns
tPV
(Note 18)
Device to Device Skew
LH/HL Transitions
3.0
3.5
ns
Note 14: This specification is guaranteed but not tested. The limits apply to propagation delays for all paths described switching in phase
(i.e., all LOW-to-HIGH, HIGH-to-LOW, etc.)
Note 15: These specifications guaranteed but not tested. The limits represent propagation delays with 250 pF load capacitors in place of the 50 pF load
capacitors in the standard AC load.
Note 16: Skew is defined as the absolute value of the difference between the actual propagation delays for any two separate outputs of the same device.
The specification applies to any outputs switching HIGH-to-LOW (tOSHL), LOW-to-HIGH (tOSLH), or any combination switching LOW-to-HIGH and/or HIGH-
to-LOW (tOST). The specification is guaranteed but not tested.
Note 17: This describes the difference between the delay of the LOW-to-HIGH and the HIGH-to-LOW transition on the same pin. It is measured across all
the outputs (drivers) on the same chip, the worst (largest delta) number is the guaranteed specification. This specification is guaranteed but not tested.
Note 18: Propagation delay variation for a given set of conditions (i.e., temperature and VCC) from device to device. This specification is guaranteed but not
tested.
Capacitance
Symbol
Parameter
Typ
CIN
Input Capacitance
5.0
CI/O (Note 19)
Output Capacitance
11.0
Note 19: CI/O is measured at frequency f = 1 MHz per MIL-STD-883, Method 3012.
Units
pF
pF
Conditions
TA = 25°C
VCC = 0.0V
VCC = 5.0V
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