NL17SZ126
Non-Inverting 3-State
Buffer
The NL17SZ126 is a high performance single noninverting buffer
operating from a 1.65 V to 5.5 V supply.
Features
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MARKING
DIAGRAM
•
•
•
•
•
•
•
•
•
•
•
•
Extremely High Speed: t
PD
2.6 ns (typical) at V
CC
= 5.0 V
Designed for 1.65 V to 5.5 V V
CC
Operation
Over Voltage Tolerant Inputs and Outputs
LVTTL Compatible
−
Interface Capability With 5.0 V TTL Logic
with V
CC
= 3.0 V
LVCMOS Compatible
24 mA Balanced Output Sink and Source Capability
Near Zero Static Supply Current Substantially Reduces System
Power Requirements
3−State OE Input is Active HIGH
Replacement for NC7SZ126
Chip Complexity = 36 FETs
These Devices are Pb−Free and are RoHS Compliant
NLV Prefix for Automotive and Other Applications Requiring
Unique Site and Control Change Requirements; AEC−Q100
Qualified and PPAP Capable
SC−88A (SOT−353)
DF SUFFIX
CASE 419A
M2 M
G
G
M
SOT−553
XV5 SUFFIX
CASE 463B
M2 MG
G
M2 = Specific Device Code
M = Date Code
G
= Pb−Free Package
(Note: Microdot may be in either location)
*Date Code orientation and/or position may vary
depending upon manufacturing location.
OE
1
5
V
CC
PIN ASSIGNMENT
1
2
3
4
5
OE
IN A
GND
OUT Y
V
CC
IN A
2
GND
3
4
OUT Y
FUNCTION TABLE
Figure 1. Pinout
(Top View)
OE Input
H
H
L
OE
IN A
OUT Y
X = Don’t Care
A Input
L
H
X
Y Output
L
H
Z
Figure 2. Logic Symbol
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 5 of this data sheet.
©
Semiconductor Components Industries, LLC, 2012
May, 2012
−
Rev. 10
1
Publication Order Number:
NL17SZ126/D
NL17SZ126
MAXIMUM RATINGS
Symbol
V
CC
V
IN
V
OUT
I
IK
I
OK
I
OUT
I
CC
T
STG
T
L
T
J
q
JA
P
D
MSL
F
R
V
ESD
DC Supply Voltage
DC Input Voltage
DC Output Voltage
DC Input Diode Current
DC Output Diode Current
DC Output Sink Current
DC Supply Current per Supply Pin
Storage Temperature Range
Lead Temperature, 1 mm from Case for 10 Seconds
Junction Temperature Under Bias
Thermal Resistance (Note 1)
Power Dissipation in Still Air at 85°C
Moisture Sensitivity
Flammability Rating
ESD Withstand Voltage
Oxygen Index: 28 to 34
Human Body Model (Note 2)
Machine Model (Note 3)
Charged Device Model (Note 4)
SC−70/SC−88A
SC−70/SC−88A
Parameter
Value
*0.5
to
)7.0
*0.5
to
)7.0
*0.5
to
)7.0
*50
*50
$50
$100
*65
to
)150
260
)150
350
150
Level 1
UL 94 V−0 @ 0.125 in
u2000
u200
N/A
V
Unit
V
V
V
mA
mA
mA
mA
°C
°C
°C
°C/W
mW
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 with no air flow.
2. Tested to EIA/JESD22−A114−A.
3. Tested to EIA/JESD22−A115−A.
4. Tested to JESD22−C101−A.
RECOMMENDED OPERATING CONDITIONS
Symbol
V
CC
V
IN
V
OUT
T
A
t
r
, t
f
DC Supply Voltage
DC Input Voltage
DC Output Voltage
Operating Temperature Range
Input Rise and Fall Time
V
CC
= 1.8 V
$0.15
V
V
CC
= 2.5 V
$0.2
V
V
CC
= 3.0 V
$0.3
V
V
CC
= 5.0 V
$0.5
V
NORMALIZED FAILURE RATE
Parameter
Min
1.65
0
0
*40
0
0
0
0
Max
5.5
5.5
5.5
+125
20
20
10
5.0
Unit
V
V
V
°C
ns/V
DEVICE JUNCTION TEMPERATURE VERSUS
TIME TO 0.1% BOND FAILURES
Junction
Temperature
°C
80
90
100
110
120
130
140
Time, Hours
1,032,200
419,300
178,700
79,600
37,000
17,800
8,900
Time, Years
117.8
47.9
20.4
9.4
4.2
2.0
1.0
FAILURE RATE OF PLASTIC = CERAMIC
UNTIL INTERMETALLICS OCCUR
T
J
= 130°C
T
J
= 120°C
T
J
= 100°C
T
J
= 110°C
T
J
= 90°C
T
J
= 80°C
100
TIME, YEARS
1
1
10
1000
Figure 3. Failure Rate versus Time Junction
Temperature
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2
NL17SZ126
DC ELECTRICAL CHARACTERISTICS
Symbol
V
IH
V
IL
V
OH
Parameter
High−Level Input
Voltage
Low−Level Input
Voltage
High−Level Output
Voltage
V
IN
= V
IH
I
OH
=
−100
mA
Condition
V
CC
(V)
1.65 to 1.95
2.3 to 5.5
1.65 to 1.95
2.3 to 5.5
1.65
1.8
2.3
3.0
4.5
1.65
2.3
3.0
3.0
4.5
1.65
1.8
2.3
3.0
4.5
1.65
2.3
3.0
3.0
4.5
0 to 5.5
1.65 to 5.5
0
5.5
1.55
1.7
2.2
2.9
4.4
1.29
1.9
2.4
2.3
3.8
1.65
1.8
2.3
3.0
4.5
1.52
2.15
2.80
2.68
4.20
0.0
0.0
0.0
0.0
0.0
0.08
0.10
0.15
0.22
0.22
0.1
0.1
0.1
0.1
0.1
0.24
0.30
0.40
0.55
0.55
$0.1
$0.5
1.0
1.0
T
A
= 255C
Min
0.75 V
CC
0.7 V
CC
0.25 V
CC
0.3 V
CC
1.55
1.7
2.2
2.9
4.4
1.29
1.9
2.4
2.3
3.8
0.1
0.1
0.1
0.1
0.1
0.24
0.30
0.40
0.55
0.55
$1.0
$5.0
10
10
Typ
Max
*405C
v
T
A
v
1255C
Min
0.75 V
CC
0.7 V
CC
0.25 V
CC
0.3 V
CC
Max
Unit
V
V
V
I
OH
=
−4
mA
I
OH
=
−8
mA
I
OH
=
−16
mA
I
OH
=
−24
mA
I
OH
=
−32
mA
V
OL
Low−Level Output
Voltage
V
IN
= V
IL
I
OL
= 100
mA
V
V
I
OL
= 4 mA
I
OL
= 8 mA
I
OL
= 16 mA
I
OL
= 24 mA
I
OL
= 32 mA
I
IN
I
OZ
I
OFF
I
CC
Input Leakage Current
3−State Output
Leakage
Power Off Leakage
Current
Quiescent Supply
Current
V
IN
= 5.5 V or GND
V
IN
= V
IH
or V
IL
0 V
v
V
OUT
v
5.5 V
V
IN
= 5.5 V or
V
OUT
= 5.5 V
V
IN
= 5.5 V or GND
V
mA
mA
mA
mA
AC ELECTRICAL CHARACTERISTICS
(t
R
= t
F
= 3.0 ns)
Symbol
t
PLH
t
PHL
Parameter
Propagation Delay
AN to YN
(Figures 4, and 5,
Table 1)
Condition
R
L
= 1 MW
R
L
= 1 MW
R
L
= 1 MW
R
L
= 500
W
R
L
= 1 MW
R
L
= 500
W
t
PZH
t
PZL
Output Enable Time
(Figures 6, 7 and 8,
Table 1)
R
L
= 250
W
C
L
= 15 pF
C
L
= 15 pF
C
L
= 15 pF
C
L
= 50 pF
C
L
= 15 pF
C
L
= 50 pF
C
L
= 50 pF
V
CC
(V)
1.8
$
0.15
2.5
$
0.2
3.3
$
0.3
5.0
$
0.5
1.8
$
0.15
2.5
$
0.2
3.3
$
0.3
5.0
$
0.5
t
PHZ
t
PLZ
Output Disable Time
(Figures 6, 7 and 8,
Table 1)
R
L
and R1= 500
W
C
L
= 50 pF
2.5
$
0.2
2.5
$
0.2
3.3
$
0.3
5.0
$
0.5
T
A
= 255C
Min
2.0
1.0
0.8
1.2
0.5
0.8
2.0
1.8
1.2
0.8
1.5
1.5
0.8
0.3
9.0
Typ
9.5
3.4
Max
12
7.5
5.2
5.7
4.5
5.0
10.5
8.5
6.2
5.5
8.0
8.0
5.7
4.7
*405C
v
T
A
v
1255C
Min
2.0
1.0
0.8
1.2
0.5
0.8
2.0
1.8
1.2
0.8
1.5
1.5
0.8
0.3
Max
12.5
8.0
5.5
6.0
4.8
5.3
12.5
9.0
6.5
5.8
8.5
8.5
6.0
5.0
ns
ns
Unit
ns
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NL17SZ126
CAPACITIVE CHARACTERISTICS
Symbol
C
IN
C
OUT
C
PD
Input Capacitance
Output Capacitance
Power Dissipation Capacitance
(Note 5)
Parameter
Condition
V
CC
= 5.5 V, V
I
= 0 V or V
CC
V
CC
= 5.5 V, V
I
= 0 V or V
CC
10 MHz, V
CC
= 3.3 V, V
I
= 0 V or V
CC
10 MHz, V
CC
= 5.5 V, V
I
= 0 V or V
CC
Typical
2.5
2.5
9
11
Unit
pF
pF
pF
5. C
PD
is defined as the value of the internal equivalent capacitance which is calculated from the 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
.
OE = V
CC
V
CC
A
t
PLH
50% V
CC
Y
50%
t
PHL
GND
C
L
*
R
L
INPUT
OUTPUT
Figure 4. Switching Waveform
*Includes all probe and jig capacitance.
A 1−MHz square input wave is recommended for
propagation delay tests.
Figure 5. t
PLH
or t
PHL
2
INPUT
V
CC
INPUT
OUTPUT
C
L
= 50 pF
R
L
= 250
W
R
1
= 500
W
OUTPUT
C
L
= 50 pF
R
L
= 500
W
V
CC
A 1−MHz square input wave is recommended for
propagation delay tests.
A 1−MHz square input wave is recommended for
propagation delay tests.
Figure 6. t
PZL
or t
PLZ
V
mi
t
PZH
On
V
mo
t
PHZ
V
mi
Figure 7. t
PZH
or t
PHZ
2.7 V
OE
0V
V
CC
V
OH
−
0.3 V
≈
0V
t
PZL
On
V
mo
t
PLZ
≈
3.0 V
V
OL
+ 0.3 V
GND
Figure 8. AC Output Enable and Disable Waveform
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4
NL17SZ126
Table 1. Output Enable and Disable Times
t
R
= t
F
= 2.5 ns, 10% to 90%; f = 1 MHz; t
W
= 500 ns
V
CC
Symbol
V
mi
V
mo
3.3 V
$
0.3 V
1.5 V
1.5 V
2.7 V
1.5 V
1.5 V
2.5 V
$
0.2 V
V
CC/
2
V
CC/
2
DEVICE ORDERING INFORMATION
Device
NL17SZ126DFT2G
NLV17SZ126DFT2G*
NL17SZ126XV5T2G
Package Type
SC70−5/SC−88A/SOT−353
(Pb−Free)
SC70−5/SC−88A/SOT−353
(Pb−Free)
SOT−553
(Pb−Free)
Shipping
†
3000 / Tape & Reel
3000 / Tape & Reel
4000 / 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.
*NLV Prefix for Automotive and Other Applications Requiring Unique Site and Control Change Requirements; AEC−Q100 Qualified and PPAP
Capable.
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5