LT1019ACN8-5#PBF

4
LT1019
1019fd
LTC1019A LTC1019
SYMBOL PARAMETER CONDITIONS MIN TYP MAX MIN TYP MAX UNITS
V
OUT
Load Regulation Series 0 I
OUT
10mA (Note 5) 0.02 0.05 0.02 0.05 mV/mA ()
I
OUT
Mode (Notes 4, 5) 0.08 0.08 mV/mA ()
Load Regulation, 1mA I
SHUNT
10mA (Notes 5, 6)
Shunt Mode 2.5V, 4.5V, 5V
0.1 0.4 0.1 0.4 mV/mA ()
10V
0.8 0.8 mV/mA ()
Thermal Regulation (Note 7) P = 200mW, t = 50ms 0.1 0.5 0.1 0.5 ppm/mW
I
Q
Quiescent Current 0.65 1.0 0.65 1.2 mA
Series Mode
1.3 1.5 mA
Minimum Shunt Current (Note 8) 0.5 0.8 0.5 0.8 mA
Minimum Input/Output I
OUT
1mA 0.9 1.1 0.9 1.1 V
Voltage Differential I
OUT
= 10mA 1.3 1.3 V
Trim Range LT1019-2.5 ±3.5 ±6 ±3.5 ±6%
LT1019-5 ±3.5 5, –13 ±3.5 5, – 13 %
LT1019-10 ±3.5 5, – 27 ±3.5 5, – 27 %
I
SC
Short-Circuit Current 2V V
IN
35V 15 25 50 15 25 50 mA
Output Connected to GND
10 10 mA
e
n
Output Voltage Noise 10Hz f 1kHz 2.5 4 2.5 4 ppm (RMS)
(Note 10) 0.1Hz f 10Hz 2.5 2.5 ppm (P-P)
Note 1: Absolute Maximum Ratings are those values beyond which the life
of a device may be impaired.
Note 2: These are high power conditions and are therefore guaranteed
only at temperatures equal to or below 70°C. Input is either floating, tied to
output or held higher than output.
Note 3: Output voltage drift is measured using the box method. Output
voltage is recorded at T
MIN
, 25°C and T
MAX
. The lowest of these three
readings is subtracted from the highest and the resultant difference is
divided by (T
MAX
– T
MIN
).
Note 4: Line regulation and load regulation are measured on a pulse basis
with low duty cycle. Effects due to die heating must be taken into account
separately. See thermal regulation and application section.
Note 5: Load regulation is measured at a point 1/8" below the base of the
package with Kelvin contacts.
Note 6: Shunt regulation is measured with the input floating. This
parameter is also guaranteed with the input connected (V
IN
– V
OUT
) > 1V,
0mA I
SINK
10mA. Shunt and sink current flow into the output.
Note 7: Thermal regulation is caused by die temperature gradients created
by load current or input voltage changes. This effect must be added to
normal line or load regulation.
Note 8: Minimum shunt current is measured with shunt voltage held
20mV below the value measured at 1mA shunt current.
Note 9: Minimum input/output voltage is measured by holding input
voltage 0.5V above the nominal output voltage, while measuring
V
IN
– V
OUT
.
Note 10: RMS noise is measured with a single pole highpass filter at 10Hz
and a 2-pole lowpass filter at 1kHz. The resulting output is full-wave
rectified and then integrated for a fixed period, making the final reading an
average as opposed to RMS. A correction factor of 1.1 is used to convert
from average to RMS, and a second correction of 0.88 is used to correct
the nonideal bandpass of the filters.
Note 11: If the part is stored outside of the specified temperature range,
the output may shift due to hysteresis.
E
LECTR
IC
AL C CHARA TERIST
ICS
The denotes specifications which apply over the full operating temperature range, otherwise specifications are T
A
= 25°C.
V
IN
= 15V, I
OUT
= 0 unless otherwise noted.
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LT1019
1019fd
CCHARA TERIST
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UW
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P
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LPER
F
O
R
C
E
Quiescent Current (LT1019-10)
Quiescent Current (LT1019-2.5)
INPUT VOLTAGE (V)
0
CURRENT (mA)
0.8
1.0
1.2
40
LT1019 • TPC01
0.6
0.4
0
10
20
30
0.2
1.6
1.4
35
5
15
25
45
125°C
25°C
–55°C
INPUT VOLTAGE (V)
0
CURRENT (mA)
0.8
1.0
1.2
40
LT1019 • TPC03
0.6
0.4
0
10
20
30
0.2
1.6
1.4
35
5
15
25
45
125°C
25°C
55°C
Minimum Input/Output Voltage
Differential
Load Regulation
Ripple Rejection
INPUT/OUTPUT VOLTAGE (V)
0
0
OUTPUT CURRENT (mA)
2.5
7.5
10
0.4
0.8
1.0 1.8
LT1019 • TPC04
5.0
0.2 0.6
1.2
1.4
1.6
T
J
= 25°C
T
J
= –55°CT
J
= 125°C
OUTPUT CURENT (mA)
–10
OUTPUT CHANGE (mV)
1.0
2.0
6
LT1019 • TPC05
0
1.0
2.0
–6
–2
2
10
0.5
1.5
0.5
1.5
4
–8
–4
0
8
SINKING SOURCING
T
J
= 25°C
LT1019-10
LT1019-4.5/LT1019-5
LT1019-2.5
FREQUENCY (Hz)
60
INPUT VOLTAGE/OUTPUT VOLTAGE (dB)
70
90
110
120
10 1k 10k 1M
LT1019 • TPC06
50
100
100k
100
80
40
LT1019-10
LT1019-4.5
LT1019-5
LT1019-2.5
T
J
= 25°C
Shunt Mode Characteristics
(LT1019-10)
Shunt Mode Characteristics
(LT1019-5)
Shunt Mode Characteristics
(LT1019-2.5)
OUTPUT-TO-GROUND VOLTAGE (V)
0
0
CURRENT (mA)
0.1
0.3
0.4
0.5
1.0
0.7
1.0
2.0
2.5
LT1019 • TPC07
0.2
0.8
0.9
0.6
0.5 1.5
3.0
3.5
4.0
INPUT OPEN
T
J
= 125°C
T
J
= 25°C
T
J
= –55°C
OUTPUT-TO-GROUND VOLTAGE (V)
0
0
CURRENT (mA)
0.1
0.3
0.4
0.5
1.0
0.7
2
4
5
LT1019 • TPC08
0.2
0.8
0.9
0.6
13
6
7
8
INPUT OPEN
T
J
= –55°C
T
J
= 125°C
T
J
= 25°C
INPUT VOLTAGE (V)
0
CURRENT (mA)
0.8
1.0
1.2
40
LT1019 • TPC02
0.6
0.4
0
10
20
30
0.2
1.6
1.4
35
5
15
25
45
125°C
25°C
55°C
Quiescent Current
(LT1019-4.5/LT1019-5)
OUTPUT-TO-GROUND VOLTAGE (V)
0
0
CURRENT (mA)
0.1
0.3
0.4
0.5
1.0
0.7
4
8
10
LT1019 • TPC09
0.2
0.8
0.9
0.6
26
12
14
16
INPUT OPEN
T
J
= –55°C
T
J
= 125°C
T
J
= 25°C
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LT1019
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CCHARA TERIST
ICS
UW
AT
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P
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LPER
F
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JUNCTION TEMPERATURE (°C)
–50
0.40
VOLTAGE (V)
0.45
0.55
0.60
0.65
0.90
0.75
0
50
75
LT1019 • TPC10
0.50
0.80
0.85
0.70
–25
25
100
125
Temp Pin Voltage
INPUT VOLTAGE (V)
0
–30
OUTPUT VOLTAGE CHANGE (µV)
–20
0
20
40
140
80
10
20
25
LT1019 • TPC11
–10
100
120
60
515
30
35
40
LT1019-2.5
LT1019-5
I
OUT
T
J
= 25°C
LT1019-10
Line Regulation
LT1019-2.5* Stability with
Output Capacitance
*LT1019-4.5/LT1019-5/LT1019-10 ARE STABLE
WITH ALL LOAD CAPACITANCE.
OUTPUT CURRENT (mA)
0.01
OUTPUT CAPACITOR (µF)
0.1
20 0 10
1019 G12
0.001
10
20
0.0001
1
10
15 5 5 15
SINK CURRENT SOURCE CURRENT
REGION OF POSSIBLE
INSTABILITY
+
V
IN
1.188V
V
OUT
GND
R2
LT1019-4.5, LT1019-5,
LT1019-10 = 5k
LT1019-2.5 = 10k
R3
80k
TRIM
LT1019-2.5 = 11k
LT1019-4.5 = 13.9k
LT1019-5 = 16k
LT1019-10 = 37.1k
R1
LT1019 • BD
BLOCK DIAGRA
W
APPLICATIO S I FOR ATIO
UU W U
Line and Load Regulation
Line regulation on the LT1019 is nearly perfect. A 10V
change in input voltage causes a typical output shift of less
than 5ppm. Load regulation (sourcing current) is nearly as
good. A 5mA change in load current shifts output voltage
by only 100µV. These are
electrical
effects, measured with
low duty cycle pulses to eliminate heating effects. In real
world applications, the
thermal
effects of load and line
changes must be considered.
Two separate thermal effects are evident in monolithic
circuits. One is a gradient effect, where power dissipation
on the die creates temperature gradients. These gradients
can cause output voltage shifts
even if the overall tempera-
ture coefficient of the reference is zero
. The LT1019, unlike
previous references, specifies thermal regulation caused
by die temperature gradients.The specification is
0.5ppm/mW. To calculate the effect on output voltage,
simply multiply the
change
in device power dissipation by

LT1019ACN8-5#PBF

Mfr. #:
Manufacturer:
Analog Devices Inc.
Description:
Voltage References Prec 5V Bandgap Reference
Lifecycle:
New from this manufacturer.
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