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74AUP1G175GM Datasheet(PDF) 2 Page - NXP Semiconductors

Part # 74AUP1G175GM
Description  Low-power D-type flip-flop with reset; positive-edge trigger
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Manufacturer  PHILIPS [NXP Semiconductors]
Direct Link  http://www.nxp.com
Logo PHILIPS - NXP Semiconductors

74AUP1G175GM Datasheet(HTML) 2 Page - NXP Semiconductors

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74AUP1G175_1
© Koninklijke Philips Electronics N.V. 2006. All rights reserved.
Preliminary data sheet
Rev. 01.xx — 27 March 2006
2 of 26
Philips Semiconductors
74AUP1G175
Low-power D-type flip-flop with reset; positive-edge trigger
s Multiple package options
s Specified from
−40 °Cto+85 °C and −40 °C to +125 °C
3.
Quick reference data
[1]
CPD is used to determine the dynamic power dissipation (PD in µW).
PD =CPD × VCC2 × fi × N+ Σ(CL × VCC2 × fo) where:
fi = input frequency in MHz;
fo = output frequency in MHz;
CL = output load capacitance in pF;
VCC = supply voltage in V;
N = number of inputs switching;
Σ(CL × VCC2 × fo) = sum of the outputs.
[2]
The condition is VI = GND to VCC.
Table 1:
Quick reference data
GND = 0 V; Tamb =25 °C; tr =tf ≤ 3ns.
Symbol
Parameter
Conditions
Min
Typ
Max
Unit
tPHL, tPLH HIGH-to-LOW and
LOW-to-HIGH
propagation delay
CP to Q
CL = 5 pF; RL =1MΩ;
VCC = 0.8 V
-
21.1
-
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.1 V to 1.3 V
2.4
5.9
11.7
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.4 V to 1.6 V
2.0
4.1
6.8
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.65 V to 1.95 V
1.6
3.3
5.4
ns
CL = 5 pF; RL =1MΩ;
VCC = 2.3 V to 2.7 V
1.3
2.5
3.6
ns
CL = 5 pF; RL =1MΩ;
VCC = 3.0 V to 3.6 V
1.2
2.1
2.9
ns
HIGH-to-LOW and
LOW-to-HIGH
propagation delay
MR to Q
CL = 5 pF; RL =1MΩ;
VCC = 0.8 V
-
17.4
-
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.1 V to 1.3 V
2.4
5.2
9.7
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.4 V to 1.6 V
2.3
3.8
4.9
ns
CL = 5 pF; RL =1MΩ;
VCC = 1.65 V to 1.95 V
1.8
3.1
4.9
ns
CL = 5 pF; RL =1MΩ;
VCC = 2.3 V to 2.7 V
1.8
2.6
3.6
ns
CL = 5 pF; RL =1MΩ;
VCC = 3.0 V to 3.6 V
1.6
2.4
3.1
ns
fmax
maximum input clock
frequency
VCC = 3.0 V to 3.6 V;
CL = 30 pF
190
300
-
MHz
CI
input capacitance
-
1.5
-
pF
CPD
power dissipation
capacitance
VCC = 1.8 V; f = 1 MHz
[1] [2] -
2.0
-
pF
VCC = 3.3 V; f = 1 MHz
[1] [2] -
2.7
-
pF


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