
LM4050-10.0
Electrical Characteristics (Industrial Temperature Range)
Boldface limits apply for T
= T
= T
MIN
to T
;
 all other limits T
= T
= 25C. The grades A, B and C designate initial Re-
verse Breakdown Voltage tolerances of
0.1% and
 ±
0.2% and 0.5% respectively.
Symbol
Parameter
Conditions
Typical
(Note 5)
Units
(Limit)
LM4050AIM3 LM4050BIM3 LM4050CIM3
Limits
(Note 6)
Limits
(Note 6)
Limits
(Note 6)
V
R
Reverse Breakdown
Voltage
Reverse Breakdown
Voltage Tolerance (Note 7)
I
R
= 150 μA
10.00
V
I
R
= 150 μA
±
10
±
43
±
20
±
53
±
50
±
83
mV (max)
mV (max)
μA
μA (max)
μA (max)
ppm/C
ppm/C
ppm/C
(max)
mV
I
RMIN
Minimum Operating Current
80
100
103
100
103
100
103
V
R
/
T Average Reverse
Breakdown Voltage
Temperature Coefficient
(Note 7)
I
R
= 10 mA
I
R
= 1 mA
I
R
= 150 μA
±
40
±
20
±
20
±
50
±
50
±
50
V
R
/
I
R
Reverse Breakdown
Voltage Change with
Operating Current Change
(Note 8)
I
RMIN
≤
 I
R
≤
 1 mA
0.8
1.5
1.5
1.5
mV (max)
3.5
3.5
3.5
mV (max)
1 mA
 ≤
 I
R
≤
 15 mA
8.0
mV
12.0
23.0
12.0
23.0
12.0
23.0
mV (max)
mV (max)
Z
R
Reverse Dynamic
Impedance
I
R
= 1 mA, f = 120 Hz,
I
AC
= 0.1 I
R
I
R
= 150 μA
10 Hz
 ≤
 f
 ≤
 10 kHz
t = 1000 hrs
T = 25C
 ±
0.1C
I
R
= 150 μA
T = 40C to 125C
0.7
e
N
Wideband Noise
150
μV
rms
V
R
Reverse Breakdown
Voltage Long Term Stability
120
ppm
V
HYST
Output Hysteresis
2.8
mV
Note 1:
 Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. Operating Ratings indicate conditions for which the device is func-
tional, but do not guarantee specific performance limits. For guaranteed specifications and test conditions, see the Electrical Characteristics. The guaranteed speci-
fications apply only for the test conditions listed. Some performance characteristics may degrade when the device is not operated under the listed test conditions.
Note 2:
 If parts are exposed to temperatures outside the specific operating temperature range, the output may shift due to hysteresis.
Note 3:
 The maximum power dissipation must be derated at elevated temperatures and is dictated by T
(maximum junction temperature),
 θ
JA
(junction to am-
bient thermal resistance), and T
(ambient temperature). The maximum allowable power dissipation at any temperature is PD
= (T
Jmax
 T
A
)/
θ
JA
or the number
given in the Absolute Maximum Ratings, whichever is lower. For the LM4050, T
Jmax
= 125C, and the typical thermal resistance (
θ
JA
326C/W for the SSOT-23 package.
Note 4:
 The human body model is a 100 pF capacitor discharged through a 1.5 k
 resistor into each pin. The machine model is a 200 pF capacitor discharged di-
rectly into each pin.
Note 5:
 Typicals are at T
J
= 25C and represent most likely parametric norm.
Note 6:
 Limits are 100% production tested at 25C. Limits over temperature are guaranteed through correlation using Statistical Quality Control (SQC) methods. The
limits are used to calculate National’s AOQL.
Note 7:
 The boldface (over-temperature) limit for Reverse Breakdown Voltage Tolerance is defined as the room temperature Reverse Breakdown Voltage Tolerance
±
[(
V
R
/
T)(max
T)(V
R
)]. Where,
 
V
R
/
T is the V
R
temperature coefficient, max
T is the maximum difference in temperature from the reference point of 25C to T
MIN
 or T
MAX
, and V
R
is the reverse breakdown voltage. The total over-temperature tolerance for the different grades in the industrial temperature range where max
T
= 65C is shown below:
A-grade:
 ±
0.425% =
 ±
0.1%
 ±
50 ppm/C x 65C
B-grade:
 ±
0.525% =
 ±
0.2%
 ±
50 ppm/C x 65C
C-grade:
 ±
0.825% =
 ±
0.5%
 ±
50 ppm/C x 65C
Therefore, as an example, the A-grade LM4050-2.5 has an over-temperature Reverse Breakdown Voltage tolerance of
 ±
2.5V x 0.425% =
 ±
11 mV.
Note 8:
 Load regulation is measured on pulse basis from no load to the specified load current. Output changes due to die temperature change must be taken into
account separately.
L
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