NLX3G17
Triple Non-Inverting
Schmitt-Trigger Buffer
The NLX3G17 MiniGatet is an advanced high−speed CMOS
triple non−inverting Schmitt−trigger buffer in ultra−small footprint.
The NLX3G17 input and output structures provide protection when
voltages up to 7.0 V are applied, regardless of the supply voltage.
The NLX3G17 can be used to enhance noise immunity or to square
up slowly changing waveforms.
Features
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MARKING
DIAGRAMS
ULLGA8
1.45 x 1.0
CASE 613AA
KM
•
•
•
•
•
•
•
Designed for 1.65 V to 5.5 V V
CC
Operation
Low Power Dissipation: I
CC
= 1
mA
(Max) at T
A
= 25°C
24 mA Balanced Output Source and Sink Capability @ V
CC
= 3.0 V
Balanced Propagation Delays
Overvoltage Tolerant (OVT) Input and Output Pins
Ultra−Small Packages
These are Pb−Free Devices
1
1
ULLGA8
1.6 x 1.0
CASE 613AB
AEM
G
1
IN A1
1
8
V
CC
ULLGA8
1.95 x 1.0
CASE 613AC
AEM
G
OUT Y3
2
7
OUT Y1
UDFN8
1.45 x 1.0
CASE 517BZ
XM
1
IN A2
3
6
IN A3
GND
4
UDFN8
1.6 x 1.0
CASE 517BY
XM
1
5
OUT Y2
UDFN8
1.95 x 1.0
CASE 517CA
XM
1
Figure 1. Pinout
(Top View)
1
1
1
IN A1
IN A2
IN A3
OUT Y1
OUT Y2
OUT Y3
K or AE = Specific Device Code
M
= Date Code
G
= Pb−Free Package
Figure 2. Logic Symbol
PIN ASSIGNMENT
1
2
3
4
IN A1
OUT Y3
IN A2
GND
OUT Y2
IN A3
OUT Y1
V
CC
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 5 of this data sheet.
FUNCTION TABLE
A
L
H
Y
L
H
5
6
7
8
©
Semiconductor Components Industries, LLC, 2012
January, 2012
−
Rev. 1
1
Publication Order Number:
NLX3G17/D
NLX3G17
MAXIMUM RATINGS
Symbol
V
CC
V
IN
V
OUT
I
IK
I
OK
I
O
I
CC
I
GND
T
STG
T
L
T
J
MSL
F
R
I
LATCHUP
DC Supply Voltage
DC Input Voltage
DC Output Voltage
DC Input Diode Current
DC Output Diode Current
DC Output Source/Sink Current
DC Supply Current Per Supply Pin
DC Ground Current per Ground Pin
Storage Temperature Range
Lead Temperature, 1 mm from Case for 10 Seconds
Junction Temperature Under Bias
Moisture Sensitivity
Flammability Rating Oxygen
Index: 28 to 34
V
IN
< GND
V
OUT
< GND
Parameter
Value
−0.5
to +7.0
−0.5
to +7.0
−0.5
to +7.0
−50
−50
±50
±100
±100
−65
to +150
260
150
Level 1
UL 94 V−0 @ 0.125 in
±500
mA
Unit
V
V
V
mA
mA
mA
mA
mA
°C
°C
°C
Latchup Performance Above V
CC
and Below GND at 125
°C
(Note 5)
Stresses exceeding Maximum Ratings may damage the device. Maximum Ratings are stress ratings only. Functional operation above the
Recommended Operating Conditions is not implied. Extended exposure to stresses above the Recommended Operating Conditions may affect
device reliability.
1. Measured with minimum pad spacing on an FR4 board, using 10 mm−by−1 inch, 2 ounce copper trace no air flow.
2. Tested to EIA/JESD22−A114−A.
3. Tested to EIA/UESD22−A115−A.
4. Tested to JESD22−C101−A.
5. Tested to EIA / JESD78.
RECOMMENDED OPERATING CONDITIONS
Symbol
V
CC
V
IN
V
OUT
T
A
Dt/DV
Positive DC Supply Voltage
Digital Input Voltage
Output Voltage
Operating Free−Air Temperature
Input Transition Rise or Fall Rate
V
CC
= 2.5 V
±
0.2 V
V
CC
= 3.3 V
±
0.3 V
V
CC
= 5.0 V
±
0.5 V
Parameter
Min
1.65
0
0
−55
0
0
0
Max
5.5
5.5
5.5
+125
No Limit
No Limit
No Limit
Unit
V
V
V
°C
ns/V
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2
NLX3G17
DC ELECTRICAL CHARACTERISTICS
V
CC
(V)
1.65
2.3
2.7
3.0
4.5
5.5
1.65
2.3
2.7
3.0
4.5
5.5
1.65
2.3
2.7
3.0
4.5
5.5
V
IN
w
V
T+MAX
I
OH
=
−100
mA
V
IN
w
V
T+MAX
I
OH
=
−4
mA
I
OH
=
−8
mA
I
OH
=
−12
mA
I
OH
=
−16
mA
I
OH
=
−24
mA
I
OH
=
−32
mA
V
IN
v
V
T−MIN
I
OL
= 100
mA
V
IN
v
V
T−MIN
I
OH
= 4 mA
I
OH
= 8 mA
I
OH
= 12 mA
I
OH
= 16 mA
I
OH
= 24 mA
I
OH
= 32 mA
0
v
V
IN
v
5.5 V
1.65
−
5.5
T
A
= 25
5C
Min
0.6
1.0
1.2
1.3
1.9
2.2
0.2
0.4
0.5
0.6
1.0
1.2
0.1
0.25
0.3
0.4
0.6
0.7
V
CC
−
0.1
1.29
1.9
2.2
2.4
2.3
3.8
Typ
1.0
1.5
1.7
1.9
2.7
3.3
0.5
0.75
0.87
1.0
1.5
1.9
0.48
0.75
0.83
0.93
1.2
1.4
V
CC
Max
1.4
1.8
2.0
2.2
3.1
3.6
0.8
1.15
1.4
1.5
2.0
2.3
0.9
1.1
1.15
1.2
1.5
1.7
T
A
=
+855C
Min
0.6
1.0
1.2
1.3
1.9
2.2
0.2
0.4
0.5
0.6
1.0
1.2
0.1
0.25
0.3
0.4
0.6
0.7
V
CC
−
0.1
1.29
1.9
2.2
2.4
2.3
3.8
0.1
0.1
Max
1.4
1.8
2.0
2.2
3.1
3.6
0.8
1.15
1.4
1.5
2.0
2.3
0.9
1.1
1.15
1.2
1.5
1.7
T
A
=
−555C
to
+1255C
Min
0.6
1.0
1.2
1.3
1.9
2.2
0.2
0.4
0.5
0.6
1.0
1.2
0.1
0.25
0.3
0.4
0.6
0.7
V
CC
−
0.1
1.29
1.8
2.1
2.3
2.2
3.7
0.1
V
Max
1.4
1.8
2.0
2.2
3.1
3.6
0.8
1.15
1.4
1.5
2.0
2.3
0.9
1.1
1.15
1.2
1.5
1.7
Unit
V
Symbol
V
T+
Parameter
Positive
Threshold
Voltage
Conditions
V
T−
Negative
Threshold
Voltage
V
V
H
Low−Level
Input
Voltage
V
V
OH
High−
Level
Output
Voltage
V
1.65
2.3
2.7
3.0
3.0
4.5
1.65
−
5.5
1.52
2.1
2.4
2.7
2.5
4.0
0
V
OL
Low−Level
Output
Voltage
1.65
2.3
2.7
3.0
3.0
4.5
0 to 5.5
0.08
0.2
0.22
0.28
0.38
0.42
0.24
0.3
0.4
0.4
0.55
0.55
±0.1
0.24
0.3
0.4
0.4
0.55
0.55
±1.0
0.24
0.4
0.5
0.5
0.55
0.55
±1.0
mA
I
IN
Input
Leakage
Current
Power−Off
Output
Leakage
Current
Quiescent
Supply
Current
I
OFF
V
OUT
= 5.5 V
0
1.0
10
10
mA
I
CC
0
v
V
IN
v
V
CC
5.5
1.0
10
10
mA
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3
NLX3G17
AC ELECTRICAL CHARACTERISTICS
(Input t
r
= t
f
= 3.0 nS)
V
CC
(V)
2.3 to 2.7
3.0 to 3.6
Test
Condition
R
L
= 1 MW,
C
L
= 15 pF
R
L
= 1 MW,
C
L
= 15 pF
R
L
= 500
W,
C
L
= 50 pF
4.5 to 5.5
R
L
= 1 MW,
C
L
= 15 pF
R
L
= 500
W,
C
L
= 50 pF
C
IN
C
PD
Input
Capacitance
Power
Dissipation
Capacitance
(Note 6)
5.5
3.3
5.5
V
IN
= 0 V or V
CC
10 MHz
V
IN
= 0 V or V
CC
T
A
= 25
5C
Min
1.8
1.5
1.8
1.0
1.2
Typ
4.3
3.3
4.0
2.7
3.2
7.0
9.0
11
Max
7.4
5.0
5.0
4.1
4.9
T
A
=
+855C
Min
1.8
1.5
1.8
1.0
1.2
Max
8.1
5.5
6.6
4.5
5.4
T
A
=
−555C
to
+1255C
Min
1.8
1.5
1.8
1.0
1.2
Max
9.1
6.5
7.6
5.5
6.4
pF
pF
Unit
ns
Symbol
t
PLH
,
t
PHL
Parameter
Propagation
Delay Input A to
Output
6. C
PD
is defined as the value of the internal equivalent capacitance which is calculated from the dynamic operating current consumption without
load. Average operating current can be obtained by the equation I
CC(OPR)
= C
PD
•
V
CC
•
f
in
+ I
CC
. C
PD
is used to determine the no−load
dynamic power consumption: P
D
= C
PD
•
V
CC2
•
f
in
+ I
CC
•
V
CC.
A or B
V
CC
50%
t
PLH
Y
50% V
CC
t
PHL
GND
Figure 3. Switching Waveforms
V
CC
PULSE
GENERATOR
R
T
DUT
C
L
R
L
R
T
= Z
OUT
of pulse generator (typically 50
W)
Figure 4. Test Circuit
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4
NLX3G17
4
V
T
, TYPICAL INPUT THRESHOLD
VOLTAGE (V)
3
2
(V
T
+)
V
H
typ
1
(V
T
−)
2
2.5
3
3.5
3.6
V
CC
, POWER SUPPLY VOLTAGE (V)
V
H
typ = (V
T
+ typ)
−
(V
T
−
typ)
Figure 5. Typical Input Threshold, V
T
+, V
T
−
versus Power Supply Voltage
V
H
V
IN
V
CC
V
T+
V
T−
GND
V
OH
V
IN
V
H
V
CC
V
T+
V
T−
GND
V
OH
V
OUT
V
OL
V
out
V
OL
(b) A Schmitt−Trigger Offers Maximum Noise Immunity
(a) A Schmitt−Trigger Squares Up Inputs With Slow Rise and Fall Times
Figure 6. Typical Schmitt−Trigger Applications
ORDERING INFORMATION
Device
NLX3G17AMX1TCG
NLX3G17BMX1TCG
NLX3G17CMX1TCG
NLX3G17DMUTCG
NLX3G17EMUTCG
NLX3G17FMUTCG
Package
ULLGA8, 1.95 x 1.0, 0.5P
(Pb−Free)
ULLGA8, 1.6 x 1.0, 0.4P
(Pb−Free)
ULLGA8, 1.45 x 1.0, 0.35P
(Pb−Free)
UDFN8, 1.95 x 1.0, 0.5P
(Pb−Free)
UDFN8, 1.6 x 1.0, 0.4P
(Pb−Free)
UDFN8, 1.45 x 1.0, 0.35P
(Pb−Free)
Shipping
†
3000 / Tape & Reel
3000 / Tape & Reel
3000 / Tape & Reel
3000 / Tape & Reel
3000 / Tape & Reel
3000 / Tape & Reel
†For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging
Specifications Brochure, BRD8011/D.
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5