Electrical Characteristics (Continued)
Boldface limits apply for T
A
=
T
J
=
T
MIN
to T
MAX
; all other limits T
A
=
T
J
=
25˚C
Symbol Parameter Conditions Typical Limits Units
(Note 4) (Note 5) (Limit)
∆V
R
Reverse Breakdown Voltage t=1000 hrs
Long Term Stability T=25˚C
±
0.1˚C 120 ppm
I
R
=
100 µA
LM9140BYZ-10.0
Electrical Characteristics
Boldface limits apply for T
A
=
T
J
=
T
MIN
to T
MAX
; all other limits T
A
=
T
J
=
25˚C
Symbol Parameter Conditions Typical Limits Units
(Note 4) (Note 5) (Limit)
V
R
Reverse Breakdown Voltage I
R
=
150 µA 10.00 V
Reverse Breakdown Voltage I
R
=
100 µA
±
50.0 mV (max)
Tolerance (Note 6)
±
66.3 mV (max)
I
RMIN
Minimum Operating Current 75 µA
100 µA (max)
103 µA (max)
∆V
R
/∆T Average Reverse Breakdown I
R
=
10 mA
±
10 ppm/˚C
Voltage Temperature I
R
=
1mA
±
10
±
25 ppm/˚C (max)
Coefficient (Note 7) I
R
=
150 µA
±
10 ppm/˚C
∆V
R
/∆I
R
Reverse Breakdown Voltage I
RMIN
≤ IR≤ 1 mA 0.8 mV
Change with Operating 1.6 mV (max)
Current Change 3.5 mV (max)
1mA≤I
R
≤15 mA 8.0 mV
12.0 mV (max)
23.0 mV (max)
Z
R
Reverse Dynamic Impedance I
R
=
1 mA, f=120 Hz, 0.7 Ω
I
AC
=
0.1 I
R
1.7 Ω(max)
e
N
Wideband Noise I
R
=
150 µA 180 µV
rms
10 Hz ≤ f ≤ 10 kHz
∆V
R
Reverse Breakdown Voltage t=1000 hrs
Long Term Stability T=25˚C
±
0.1˚C 120 ppm
I
R
=
150 µA
Note 1: Absolute MaximumRatings indicate limits beyond which damage to the device may occur. Operating Ratings indicate conditions for which the device is functional, but do not guarantee specific performance limits. For guaranteed specifications and test conditions, see the Electrical Characteristics. The guaranteed specifications apply only for the test conditions, see the Electrical Characteristics. The guaranteed specifications 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: The maximum power dissipation must be derated at elevated temperatures and is dictated by T
Jmax
(maximum junction temperature), θJA(junction to am-
bient thermal resistance), and T
A
(ambient temperature). The maximum allowable power dissipation at any temperature is PD
MAX
=
(T
Jmax−TA
)/θJAor the number
given in the Absolute Maximum Ratings, whichever is lower. For the LM9140, T
Jmax
=
125˚C, and the typcial thermal resistance (θ
JA
), when board mounted, is
170˚C/W with 0.125" lead length for the TO-92 package.
Note 3: The human body model is a 100 pF capacitor discharged through a 1.5 kΩ resistor into each pin. The machine mode is a 200 pF capacitor discharged di-
rectly into each pin.
Note 4: Typicals are at T
J
=
25˚C and represent most likely parametric norm.
Note 5: Limits are 100%production tested at 25˚C. Limits over temperature are guaranteed through correlation using Statistical Quality Control (SQC) methods. The
limits are used to calculate National’s AOQL.
Note 6: The boldface (over-temperature) limit for Reverse Breakdown Voltage Tolerance is defined as a room termperature Reverse Breakdown Voltage Tolerance
±
[∆VR/∆T) (65˚C) (VR)]. ∆VR/∆T is the VRtemperature coefficent, 65˚C is the temperature range from −40˚C to the reference point of 25˚C, and VRis the reverse
breakdown voltage. The total over-temperature tolerence for the different grades is shown below:
B-grade:
±
0.66
%
=
±
0.5
%
±
25 ppm/˚C x 65˚C
Therefore, as an example, the B-grade LM9140-2.5 has an over-temperature Reverse Breakdown Voltage tolerance of
±
2.5V x 0.66
%
=
±
16.6 mV.
Note 7: The average temperature coefficient is defined as the maximum deviation of reference voltage at all measured temperatures between the operating T
MAX
and T
MIN
, divided by T
MAX−TMIN
. The measured temperatures are −55˚C, −40˚C, 0˚C, 25˚C, 70˚C, 85˚C and 125˚C.
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