NLSV4T244E
4-Bit Dual-Supply
Non-Inverting Level
Translator
The NLSV4T244E is a 4−bit configurable dual−supply voltage
level translator. The input A
n
and output B
n
ports are designed to track
two different power supply rails, V
CCA
and V
CCB
respectively. Both
supply rails are configurable from 0.9 V to 4.5 V allowing universal
low−voltage translation from the input A
n
to the output B
n
port.
Features
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MARKING
DIAGRAMS
UQFN12
MU SUFFIX
CASE 523AE
AFMG
G
•
•
•
•
•
•
•
•
Wide V
CCA
and V
CCB
Operating Range: 0.9 V to 4.5 V
High−Speed w/ Balanced Propagation Delay
Inputs and Outputs have OVT Protection to 4.5 V
Non−preferential V
CCA
and V
CCB
Sequencing
Outputs at 3−State until Active V
CC
is Reached
Power−Off Protection
Outputs Switch to 3−State with V
CCB
at GND
Data Rate > 200 Mbps @ V
CCA
= 1.8 V, V
CCB
= 3.3 V, R
L
= 2 kW,
C
L
= 15 pF
•
Ultra−Small Packaging: 1.7 mm x 2.0 mm UQFN12
•
These are Pb−Free Devices
Typical Applications
1
AF = Specific Device Code
M = Date Code
= Pb−Free Package
G
(Note: Microdot may be in either location)
14
14
1
SOIC−14
D SUFFIX
CASE 751A
1
14
14
1
TSSOP−14
DT SUFFIX
CASE 948G
1
SV4T
244E
ALYWG
G
4T244EG
AWLYWW
•
Mobile Phones, PDAs, Other Portable Devices
Important Information
•
ESD Protection for All Pins:
HBM (Human Body Model) > 2000 V
MM (Machine Model) > 400 V
A
=
Assembly Location
L, WL
=
Wafer Lot
Y, YY
=
Year
W, WW =
Work Week
G or
G
= Pb−Free Package
(Note: Microdot may be in either location)
ORDERING INFORMATION
Device
NLSV4T244EMUTAG
NLSV4T244EDR2G
Package
UQFN12
(Pb−Free)
SO−14
(Pb−Free)
Shipping
†
3000/Tape &
Reel
2500/Tape &
Reel
2500/Tape &
Reel
NLSV4T244EDTR2G TSSOP14
(Pb−Free)
†For information on tape and reel specifications,
including part orientation and tape sizes, please
refer to our Tape and Reel Packaging Specification
Brochure, BRD8011/D.
©
Semiconductor Components Industries, LLC, 2011
1
October, 2017 − Rev. 4
Publication Order Number:
NLSV4T244E/D
NLSV4T244E
OE
V
CCA
A1
A2
A3
A4
1
2
3
4
5
6
12
11
10
9
8
7
OE V
CCB
B1
V
CCB
B1
B2
B3
B4
1
V
CCA
2
A1
3
A2
14
13
12
B2
11
B3
10
NC
9
B4
8
4
A3
5
A4
6
NC
7
GND
GND
(Top View)
Figure 1. Pin Assignments
V
CCA
A1
V
CCB
B1
A2
B2
A3
B3
A4
B4
OE
Figure 2. Logic Diagram
PIN ASSIGNMENT
PIN
V
CCA
V
CCB
GND
A
n
B
n
OE
FUNCTION
Input Port DC Power Supply
Output Port DC Power Supply
Ground
Input Port
Output Port
Output Enable
OE
L
L
H
TRUTH TABLE
Inputs
A
n
L
H
X
Outputs
B
n
L
H
3−State
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2
NLSV4T244E
MAXIMUM RATINGS
Symbol
V
CCA
, V
CCB
V
I
V
C
V
O
DC Supply Voltage
DC Input Voltage
Control Input
DC Output Voltage
(Power Down)
(Active Mode)
(Tri−State Mode)
I
IK
I
OK
I
O
I
CCA
, I
CCB
I
GND
T
STG
T
J
q
JA
Y
JC(top)
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
Junction Temperature
Junction−to−Ambient Thermal Resistance
Junction−to−Case (Top) Thermal Resistance
A
n
OE
B
n
B
n
B
n
V
I
< GND
V
O
< GND
V
CCA
= V
CCB
= 0
Rating
Condition
Value
−0.5 to +5.5
−0.5 to +5.5
−0.5 to +5.5
−0.5 to +5.5
−0.5 to +5.5
−0.5 to +5.5
−20
−50
±50
±100
±100
−65 to +150
+125
53
10
Unit
V
V
V
V
V
V
mA
mA
mA
mA
mA
°C
°C
°C/W
°C/W
Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality
should not be assumed, damage may occur and reliability may be affected.
RECOMMENDED OPERATING CONDITIONS
Symbol
V
CCA
, V
CCB
V
I
V
C
V
IO
Positive DC Supply Voltage
Bus Input Voltage
Control Input
Bus Output Voltage
(Power Down Mode)
(Active Mode)
(Tri−State Mode)
T
A
Dt
/
DV
Operating Temperature Range
Input Transition Rise or Rate
V
I
, from 30% to 70% of V
CC
; V
CC
= 3.3 V
±0.3
V
OE
B
n
B
n
B
n
Parameter
Min
0.9
GND
GND
GND
GND
GND
−40
0
Max
4.5
4.5
4.5
4.5
V
CCB
4.5
+85
10
Unit
V
V
V
V
V
V
°C
nS
Functional operation above the stresses listed in the Recommended Operating Ranges is not implied. Extended exposure to stresses beyond
the Recommended Operating Ranges limits may affect device reliability.
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3
NLSV4T244E
DC ELECTRICAL CHARACTERISTICS
−405C to +855C
Symbol
V
IH
Parameter
Input HIGH Voltage
(An, OE)
Test Conditions
V
CCA
(V)
3.6 – 4.5
2.7 – 3.6
2.3 – 2.7
1.4 − 2.3
0.9 – 1.4
V
IL
Input LOW Voltage
(An, OE)
3.6 – 4.5
2.7 – 3.6
2.3 – 2.7
1.4 − 2.3
0.9 – 1.4
V
OH
Output HIGH Voltage
I
OH
= −100
mA;
V
I
= V
IH
I
OH
= −0.5 mA; V
I
= V
IH
I
OH
= −2 mA; V
I
= V
IH
I
OH
= −6 mA; V
I
= V
IH
I
OH
= −12 mA; V
I
= V
IH
I
OH
= −18 mA; V
I
= V
IH
I
OH
= −24 mA; V
I
= V
IH
V
OL
Output LOW Voltage
I
OL
= 100
mA;
V
I
= V
IL
I
OL
= 0.5 mA; V
I
= V
IH
I
OL
= 2 mA; V
I
= V
IH
I
OL
= 6 mA; V
I
= V
IL
I
OL
= 12 mA; V
I
= V
IL
I
OL
= 18 mA; V
I
= V
IL
I
OL
= 24 mA; V
I
= V
IL
I
I
I
OFF
I
CCA
I
CCB
Input Leakage Current
Power−Off Leakage Current
Quiescent Supply Current
Quiescent Supply Current
V
I
= V
CCA
or GND
OE = 0 V
V
I
= V
CCA
or GND;
I
O
= 0, V
CCA
= V
CCB
V
I
= V
CCA
or GND;
I
O
= 0, V
CCA
= V
CCB
V
I
= V
CCA
or GND;
I
O
= 0, V
CCA
= V
CCB
0.9 – 4.5
0.9
1.4
1.65
2.3
2.3
2.7
2.3
3.0
3.0
0.9 – 4.5
1.1
1.4
1.65
2.3
2.7
2.3
3.0
3.0
0.9 – 4.5
0
0.9 – 4.5
0.9 – 4.5
0.9 – 4.5
0.9 – 4.5
4.5
3.6
4.5
3.6
0.9 – 4.5
0.9 – 4.5
0.9
1.4
1.65
2.3
2.3
2.7
2.3
3.0
3.0
0.9 – 4.5
1.1
1.4
1.65
2.3
2.7
2.3
3.0
3.0
0.9 – 4.5
0.9 – 4.5
0
0.9 − 4.5
0.9 − 4.5
0.9 – 4.5
4.5
3.6
4.5
3.6
0.9 – 4.5
0.9 – 4.5
V
CCB
(V)
0.9 – 4.5
Min
2.2
2.0
1.6
0.65 * V
CCA
0.9 * V
CCA
−
−
−
−
−
V
CCB
– 0.2
0.75 * V
CCB
1.05
1.25
2.0
1.8
2.2
1.7
2.4
2.2
−
−
−
−
−
−
−
−
−
−1.0
−1.0
−1.0
−
−
−
−
−
−
−
Max
−
−
−
−
−
0.8
0.8
0.7
0.35 * V
CCA
0.1 * V
CCA
−
−
−
−
−
−
−
−
−
−
0.2
0.3
0.35
0.3
0.4
0.4
0.6
0.45
0.6
1.0
1.0
1.0
2.0
2.0
4.0
10
5.0
10
5.0
1.0
75
mA
mA
mA
mA
mA
mA
mA
mA
V
V
V
Unit
V
I
CCA
+ I
CCB
Quiescent Supply Current
DI
CCA
DI
CCB
I
OZ
Increase in I
CC
per Input Voltage, V
I
= V
CCA
– 0.6 V;
Other Inputs at V
CCA
or GND
V
I
= V
CCA
or GND
Increase in I
CC
per Input Voltage, V
I
= V
CCA
– 0.6 V;
Other Inputs at V
CCA
or GND
V
I
= V
CCA
or GND
I/O Tri−State Output Leakage
Current
T
A
= 25°C, OE = 0V
CCA
,
V
O
= 0 to V
CCB
+ 0.5 V
T
A
= 25°C, OE = 0V
CCA
,
V
O
= 0 to 4.5 V
Product parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Product
performance may not be indicated by the Electrical Characteristics if operated under different conditions.
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4
NLSV4T244E
TOTAL STATIC POWER CONSUMPTION (I
CCA
+ I
CCB
)
−405C to +855C
V
CCB
(V)
4.5
V
CCA
(V)
4.5
3.3
2.8
1.8
0.9
NOTE:
Min
Max
2
2
<2
<1
< 0.5
Min
3.3
Max
2
2
<1
<1
< 0.5
Min
2.8
Max
2
2
<1
< 0.5
< 0.5
Min
1.8
Max
2
2
< 0.5
< 0.5
< 0.5
Min
0.9
Max
< 1.5
< 1.5
< 0.5
< 0.5
< 0.5
Unit
μA
μA
μA
μA
μA
Connect ground before applying supply voltage V
CCA
or V
CCB
. This device is designed with the feature that the power−up
sequence of V
CCA
and V
CCB
will not damage the IC.
AC ELECTRICAL CHARACTERISTICS
−405C to +855C
V
CCB
(V)
4.5
Symbol
t
PLH
,
t
PHL
(Note 1)
3.3
Max
3.0
3.3
3.5
3.8
4.1
4.4
4.7
4.9
5.2
5.5
4.4
4.7
4.9
5.2
5.5
0.15
0.15
0.15
0.15
0.15
Min
Max
3.2
3.5
3.7
4.0
4.3
4.8
5.1
5.3
5.6
5.9
4.8
5.1
5.3
5.6
5.9
0.15
0.15
0.15
0.15
0.15
Min
2.8
Max
3.4
3.7
3.9
4.2
4.5
5.2
5.5
5.7
6.0
6.3
5.2
5.5
5.7
6.0
6.3
0.15
0.15
0.15
0.15
0.15
Min
1.8
Max
3.7
4.0
4.2
4.5
4.8
5.7
6.0
6.2
6.5
6.8
5.7
6.0
6.2
6.5
6.8
0.15
0.15
0.15
0.15
0.15
Min
1.5
Max
4.0
4.3
4.5
4.8
5.0
6.2
6.5
6.7
7.0
7.3
6.2
6.5
6.7
7.0
7.3
0.15
0.15
0.15
0.15
0.15
nS
nS
nS
Unit
nS
Parameter
Propagation
Delay,
A
n
to B
n
V
CCA
(V)
4.5
3.6
2.8
1.8
1.5
Min
t
PZH
,
t
PZL
(Note 1)
Output
Enable,
OE to B
n
4.5
3.3
2.8
1.8
1.5
t
PHZ
,
t
PLZ
(Note 1)
Output
Disable,
OE to B
n
4.5
3.3
2.8
1.8
1.5
t
OSHL
,
t
OSLH
(Note 1)
Output to
Output Skew,
Data to Out-
put
4.1
3.6
2.8
1.8
1.2
1. Propagation delays defined per Figures 3 and 4.
CAPACITANCE
Symbol
C
IN
C
I/O
C
PD
Parameter
Control Pin Input Capacitance
I/O Pin Input Capacitance
Power Dissipation Capacitance
Test Conditions
V
CCA
= V
CCB
= 3.3 V, V
I
= 0 V or V
CCA/B
V
CCA
= V
CCB
= 3.3 V, V
I
= 0 V or V
CCA/B
V
CCA
= V
CCB
= 3.3 V, V
I
= 0 V or V
CCA
, f = 10 MHz
Typ
(Note 2)
3.5
5.0
20
Unit
pF
pF
pF
2. Typical values are at T
A
= +25°C.
3. C
PD
is defined as the value of the IC’s equivalent capacitance from which the operating current can be calculated from:
I
CC(operating)
^
C
PD
x V
CC
x f
IN
x N
SW
where I
CC
= I
CCA
+ I
CCB
and N
SW
= total number of outputs switching.
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5