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LT6656AIS6-2.5TRPBF Datasheet(PDF) 3 Page - Linear Technology

Part # LT6656AIS6-2.5TRPBF
Description  1關A Precision Series Voltage Reference
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Manufacturer  LINER [Linear Technology]
Direct Link  http://www.linear.com
Logo LINER - Linear Technology

LT6656AIS6-2.5TRPBF Datasheet(HTML) 3 Page - Linear Technology

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LT6656

6656f
elecTrical characTerisTics
Note 1: Stresses beyond those listed under Absolute Maximum Ratings
may cause permanent damage to the device. Exposure to any Absolute
Maximum Rating condition for extended periods may affect device
reliability and lifetime.
Note 2: If the parts are stored outside of the specified temperature range,
the output may shift due to hysteresis.
Note 3: The stated temperature is typical for soldering of the leads during
manual rework. For detailed IR reflow recommendations, refer to the
Applications section.
Note 4: Temperature coefficient is measured by dividing the maximum
change in output voltage by the specified temperature range.
Note 5: Load regulation is measured with a pulse from no load to the
specified load current. Output changes due to die temperature change
must be taken into account separately.
Note 6: Excludes load regulation errors.
Note 7: Peak-to-peak noise is measured with a 3-pole highpass filter at
0.1Hz and a 4-pole lowpass filter at 10Hz. The unit is enclosed in a still-air
The l denotes the specifications which apply over the specified
temperature range, otherwise specifications are at TA = 25°C. VIN = VOUT + 500mV, CL = 1µF, IL = 0, unless otherwise noted. (Note 9)
environment to eliminate thermocouple effects on the leads. The test
time is 10 seconds. RMS noise is measured on a spectrum analyzer in a
shielded environment.
Note 8: Long term stability typically has a logarithmic characteristic and
therefore, changes after 1000 hours tend to be much smaller than before
that time. Total drift in the second thousand hours is normally less than
one third that of the first thousand hours with a continuing trend toward
reduced drift with time. Long-term stability will also be affected by
differential stresses between the IC and the board material created during
board assembly.
Note 9: Hysteresis in output voltage is created by mechanical stress
that differs depending on whether the IC was previously at a higher or
lower temperature. Output voltage is always measured at 25°C, but
the IC is cycled to the hot or cold temperature limit before successive
measurements. For instruments that are stored at well controlled
temperatures (within 20 or 30 degrees of operational temperature)
hysteresis is usually not a dominant error source.
PARAMETER
CONDITIONS
MIN
TYP
MAX
UNITS
Output Voltage Error
LT6656A
LT6656B
–0.05
–0.10
0.05
0.10
%
%
Output Voltage Temperature Coefficient (Note 4)
LT6656A
LT6656B
l
l
5
12
10
20
ppm/°C
ppm/°C
Line Regulation
VIN = (VOUT + 0.5V) to 18V
l
2
25
40
ppm/V
ppm/V
Load Regulation (Note 5)
ISOURCE = 5mA
l
65
150
375
ppm/mA
ppm/mA
Dropout Voltage (Note 6)
VOUT Error ≤ 0.1%
ISOURCE = 0µA
ISOURCE = 5mA
l
l
3
10
40
500
mV
mV
mV
Supply Current
l
0.85
1.0
1.5
µA
µA
Output Short Circuit Current
Sourcing, Short VOUT to GND
Sinking, Short VOUT to VIN
18
4
mA
mA
Input Reverse Leakage Current
VIN = -18V, VOUT = GND
35
µA
Reverse Output Current
VIN = GND, VOUT = 18V
30
µA
Output Voltage Noise (Note 7)
0.1Hz to 10Hz
10Hz to 1kHz
60
80
µVP-P
µVRMS
Turn-On Time
0.1% Settling
25
ms
Long Term Drift of Output Voltage (Note 8)
50
ppm/√kHr
Hysteresis (Note 9)
∆T = 0°C to 70°C
∆T = –40°C to 85°C
25
70
ppm
ppm


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