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M20 Datasheet(PDF) 10 Page - STMicroelectronics

Part # M20
Description  Ultra-low Current 2.4V precision analog temperature sensor
PDF  17 Pages
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Manufacturer  STMICROELECTRONICS [STMicroelectronics]
Direct Link  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

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DC and AC characteristics
STLM20
10/17
4
DC and AC characteristics
This section summarizes the DC and AC characteristics of the device. The parameters in
the DC and AC characteristics table that follows are derived from tests performed under the
test conditions (see Table6 on page10). Designers should check that the operating
conditions in their circuit match the operating conditions when relying on the quoted
parameters.
Table 6.
DC and AC characteristics
Sym
Description
Test condition(1)
1.
Valid for Ambient Operating Temperature: TA = –55 to 130°C or TA = –40 to 85°C; VCC = 2.7V (except
where noted).
Min
Typ(2)
2.
TJ = TA = 25°C.
Max
Unit
VCC
Supply voltage
TA = –30°C to 130°C
2.4
5.5
V
TA = –55°C to 130°C or
–40°C to 85°C
2.7
5.5
V
VO
Output voltage
TA = 0°C
1.8639
V
Temperature to voltage error(3)
VO = (–3.88E–6 * T2) +
(–1.15E–2 * T) + 1.8639V
3.
Error accuracy is between the measured and calculated output voltage at specified conditions of voltage,
current, and temperature.
TA = 25°C to 30°C
±1.5
°C
TA = 125°C to 130°C
±2.5
°C
TA = 80°C to 85°C
±2.1
°C
TA = 0°C
±1.9
°C
TA = –40°C
±2.3
°C
TA = –55°C
±2.5
°C
IQ
Quiescent current
2.4V
≤V
CC ≤5.5V
4.8
8
µA
Sensor gain (temperature
sensitivity or average slope),
VO = –11.77mV/°C * T + 1.860V
–30°C
≤T
A ≤100°C
–11.4 –11.77 –12.2
mV/°C
Non-linearity
–20°C
≤T
A ≤80°C
±0.4
%
∆I
Q
Change of quiescent current
2.4V
≤V
CC ≤5.5V
0.7
µA
TCVO
Temperature coefficient of
quiescent current
–11
nA/°C
ISD
Shutdown current
VCC ≤0.8V
0.02
µA
ZO
Output impedance
0µA
≤I
L ≤16µA
(4)(5)
4.
With negative current flowing into STLM20 and positive current flowing out, can typically sink less than 1µA
and source is 16µA.
5.
Over the supply range of 2.4 to 5.5V.
160
RegL
Load regulation(6)
6.
Measured at constant junction temperature, with pulse testing and low duty cycle. Output changes due to
heating may be calculated by multiplying internal dissipation by thermal resistance.
–2.5
mV
RegI1
Line regulation
2.4V
≤V
CC ≤5.0V
3.3
mV/V
RegI2
5.0V
≤V
CC ≤5.5V
11
mV



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