ISL60002DIH312Z Intersil, ISL60002DIH312Z Datasheet - Page 6

REF 1.25V LOW POWER FGA, SOT-23-3

ISL60002DIH312Z

Manufacturer Part Number
ISL60002DIH312Z
Description
REF 1.25V LOW POWER FGA, SOT-23-3
Manufacturer
Intersil
Datasheet

Specifications of ISL60002DIH312Z

Topology
Series
Input Voltage
2.7V To 5.5V
Reference Voltage Tolerance
5mV
Voltage Reference Case Style
SOT-23
No. Of Pins
3
Operating Temperature Range
-40°C
Temperature Coefficient
20ppm/°C
Reference Voltage
1.25V
Rohs Compliant
Yes
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

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Part Number:
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Quantity:
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Electrical Specifications ISL60002-33, V
Operating Conditions: V
Common Electrical Specifications ISL60002 -10, -11, -12, -18, -20, and -25
Operating Conditions: V
NOTES:
1. Over the specified temperature range. Temperature coefficient is measured by the box method whereby the change in V
2. Thermal Hysteresis is the change in V
3. Guaranteed by device characterization and/or correlation to other device tests.
4. FGA™ voltage reference long term drift is a logarithmic characteristic. Changes that occur after the first few hundred hours of operation are
5. Pb-free manufacturing can result in solder reflow temperatures exceeding the +225°C absolute maximum. Exposing the device to this reflow
∆V
∆V
∆V
∆V
temperature range: (-40°C to +85°C = +125°C, or -40°C to +105°C = +145°C for the ISL60002-33).
at T
between the initial V
+25°C to +85°C to -40°C to +25°C, and for ∆T
significantly smaller with time, asymptotically approaching zero beyond 2000 hours. Because of this decreasing characteristic, long-term drift is
specified in ppm/√1kHr.
temperature will not damage it or cause any functional issues and the device will operate normally. The high reflow temperature may result in
a permanent shift in output voltage of 500µV to 1.0mV depending on the temperature and exposure time. If possible, using a reduced reflow
temperature in production will result in the best possible output voltage accuracy.
SYMBOL
∆V
SYMBOL
∆V
TC V
OUT
OUT
OUT
OUT
A
OUT
OUT
I
I
V
V
I
SC
SC
IN
= +25°C for the device under test. The device is temperature cycled and a second V
N
N
/∆I
OUT
/∆V
/∆T
/∆T
/∆t
/∆t
OUT
IN
A
A
Long Term Stability (Note 4)
Thermal Hysteresis (Note 2)
Short Circuit Current (Note 3)
Output Voltage Noise
Output Voltage Temperature
Coefficient (Note 1)
Supply Current
Line Regulation
Load Regulation
Long Term Stability (Note 4)
Thermal Hysteresis (Note 2)
Short Circuit Current (Note 3)
Output Voltage Noise
IN
IN
OUT
= 5.0V, I
= 3.0V, I
reading and the second V
PARAMETER
PARAMETER
6
OUT
OUT
= 0mA, C
= 0mA, C
OUT
measured @ T
OUT
OUT
A
= +145°C, the device under is cycled from +25°C to +105°C to -40°C to +25°C
OUT
= 0.001µF, T
= 0.001µF, T
OUT
= 3.300V
T
∆T
T
0.1Hz ≤ f ≤ 10Hz
+2.7V ≤ V
0mA ≤ I
-7mA ≤ I
T
∆T
T
0.1Hz ≤ f ≤ 10Hz
reading is then expressed in ppm. For ∆T
A
A
A
A
A
A
A
= +25°C
= +25°C
= +25°C
= +25°C
= +25°C after temperature cycling over a specified range, ∆T
= +145°C
= +125°C
ISL60002
A
A
SOURCE
SINK
= -40 to +105°C, unless otherwise specified.
= -40 to +85°C, unless otherwise specified
IN
(Continued)
≤ +5.5V
≤ 0mA
CONDITIONS
CONDITIONS
≤ 7mA
OUT
measurement is taken at +25°C. The difference
A
= +125°C, the device under is cycled from
MIN
MIN
TYP
TYP
100
350
100
10
50
30
80
25
50
10
50
30
A
OUT
, V
OUT
MAX
MAX
is divided by the
900
250
100
150
80
20
80
is read initially
August 1, 2006
ppm/√1
ppm/°C
ppm/√1
UNITS
UNITS
µV/mA
µV/mA
µV
µV
FN8082.7
µV/V
kHrs
kHrs
ppm
ppm
mA
mA
nA
P-P
P-P

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