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74LVC574A Datasheet(PDF) 5 Page - NXP Semiconductors

Part # 74LVC574A
Description  Octal D-type flip-flop with 5-volt tolerant inputs/outputs; positive edge-trigger 3-State
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Manufacturer  PHILIPS [NXP Semiconductors]
Direct Link  http://www.nxp.com
Logo PHILIPS - NXP Semiconductors

74LVC574A Datasheet(HTML) 5 Page - NXP Semiconductors

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Philips Semiconductors
Product specification
74LVC574A
Octal D-type flip-flop with 5-volt tolerant
inputs/outputs; positive edge-trigger (3-State)
1998 Jul 29
5
ABSOLUTE MAXIMUM RATINGS1
In accordance with the Absolute Maximum Rating System (IEC 134)
Voltages are referenced to GND (ground = 0V)
SYMBOL
PARAMETER
CONDITIONS
RATING
UNIT
VCC
DC supply voltage
–0.5 to +6.5
V
IIK
DC input diode current
VI t0
–50
mA
VI
DC input voltage
Note 2
–0.5 to +6.5
V
IOK
DC output diode current
VO uVCC or VO t 0
"50
mA
VO
DC output voltage; output HIGH or LOW state
Note 2
–0.5 to VCC +0.5
V
VO
DC output voltage; output 3-State
Note 2
–0.5 to 6.5
V
IO
DC output source or sink current
VO = 0 to VCC
"50
mA
IGND, ICC
DC VCC or GND current
"100
mA
Tstg
Storage temperature range
–65 to +150
°C
Power dissipation per package
PTOT
– plastic mini-pack (SO)
above +70
°C derate linearly with 8 mW/K
500
mW
– plastic shrink mini-pack (SSOP and TSSOP)
above +60
°C derate linearly with 5.5 mW/K
500
mW
NOTES:
1. Stresses beyond those listed may cause permanent damage to the device. These are stress ratings only and functional operation of the
device at these or any other conditions beyond those indicated under “recommended operating conditions” is not implied. Exposure to
absolute-maximum-rated conditions for extended periods may affect device reliability.
2. The input and output voltage ratings may be exceeded if the input and output current ratings are observed.
DC ELECTRICAL CHARACTERISTICS
Over recommended operating conditions voltages are referenced to GND (ground = 0V)
LIMITS
SYMBOL
PARAMETER
TEST CONDITIONS
Temp = -40
°C to +85°C
UNIT
MIN
TYP1
MAX
V
HIGH level Input voltage
VCC = 1.2V
VCC
V
VIH
HIGH level Input voltage
VCC = 2.7 to 3.6V
2.0
V
V
LOW level Input voltage
VCC = 1.2V
GND
V
VIL
LOW level Input voltage
VCC = 2.7 to 3.6V
0.8
V
VCC = 2.7V; VI = VIH or VIL;IO = –12mA
VCC*0.5
VO
HIGH level output voltage
VCC = 3.0V; VI = VIH or VIL;IO = –100µA
VCC*0.2
VCC
V
VOH
HIGH level output voltage
VCC = 3.0V; VI = VIH or VIL; IO = –18mA
VCC*0.6
V
VCC = 3.0V; VI = VIH or VIL; IO = –24mA
VCC*0.8
VCC = 2.7V; VI = VIH or VIL;IO = 12mA
0.40
VOL
LOW level output voltage
VCC = 3.0V; VI = VIH or VIL;IO = 100µA
GND
0.20
V
VCC = 3.0V; VI = VIH or VIL; IO = 24mA
0.55
I
Input leakage current2
VCC =3 6V; V = 5 5V or GND
"01
"5
µA
II
Input leakage current2
VCC = 3.6V; VI = 5.5V or GND
"0.1
"5
µA
IOZ
3-State output OFF-state current
VCC = 3.6V; VI = VIH or VIL;VO = 5.5V or GND
0.1
"10
µA
Ioff
Power off leakage supply
VCC = 0.0V; VI or VO = 5.5V
0.1
"10
µA
ICC
Quiescent supply current
VCC = 3.6V; VI = VCC or GND; IO = 0
0.1
10
µA
∆ICC
Additional quiescent supply current
per input pin
VCC = 2.7V to 3.6V; VI = VCC –0.6V; IO = 0
5
500
µA
NOTES:
1. All typical values are at VCC = 3.3V and Tamb = 25°C.
2. The specified overdrive current at the data input forces the data input to the opposite logic input state.


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