LTC2413CGN#PBF Linear Technology, LTC2413CGN#PBF Datasheet - Page 25

IC A/D CONV 24BIT MICRPWR 16SSOP

LTC2413CGN#PBF

Manufacturer Part Number
LTC2413CGN#PBF
Description
IC A/D CONV 24BIT MICRPWR 16SSOP
Manufacturer
Linear Technology
Datasheet

Specifications of LTC2413CGN#PBF

Number Of Bits
24
Sampling Rate (per Second)
6.8
Data Interface
MICROWIRE™, Serial, SPI™
Number Of Converters
2
Power Dissipation (max)
1mW
Voltage Supply Source
Single Supply
Operating Temperature
0°C ~ 70°C
Mounting Type
Surface Mount
Package / Case
16-SSOP (0.150", 3.90mm Width)
Number Of Elements
1
Resolution
24Bit
Architecture
Delta-Sigma
Sample Rate
0.007KSPS
Input Polarity
Bipolar
Input Type
Voltage
Rated Input Volt
±2.75V
Differential Input
Yes
Power Supply Requirement
Single
Single Supply Voltage (typ)
3.3/5V
Single Supply Voltage (min)
2.7V
Single Supply Voltage (max)
5.5V
Dual Supply Voltage (typ)
Not RequiredV
Dual Supply Voltage (min)
Not RequiredV
Dual Supply Voltage (max)
Not RequiredV
Integral Nonlinearity Error
14ppm of Vref
Operating Temp Range
0C to 70C
Operating Temperature Classification
Commercial
Mounting
Surface Mount
Pin Count
16
Package Type
SSOP N
Input Signal Type
Differential
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Company:
Part Number:
LTC2413CGN#PBFLTC2413CGN
Manufacturer:
LT
Quantity:
10 000
Company:
Part Number:
LTC2413CGN#PBF
Manufacturer:
LINEAR/凌特
Quantity:
20 000
APPLICATIO S I FOR ATIO
The effect of this input dynamic current can be analyzed
using the test circuit of Figure 17. The C
includes the LTC2413 pin capacitance (5pF typical) plus
the capacitance of the test fixture used to obtain the results
shown in Figures 18 and 19. A careful implementation can
bring the total input capacitance (C
thus achieving better performance than the one predicted
by Figures 18 and 19. For simplicity, two distinct situa-
tions can be considered.
Figure 18. +FS Error vs R
50
40
30
20
10
SWITCHING FREQUENCY
f
f
1.E+00 1.E+01 1.E+02 1.E+03 1.E+04 1.E+05
SW
SW
V
V
0
I
V
I
V
I
REF
REF
REF
REF
I
IN
IN
IN
IN
= 69900Hz INTERNAL OSCILLATOR
= 0.5 • f
+
+
+
+
V
REF
REF
IN
IN
F
T
O
CC
A
+
= GND
= 25 C
U
+
= 5V
= 2.5V
V
V
= 5V
EOSC
CC
CC
C
= 5V
= GND
C
IN
C
IN
IN
= 0.001 F
C
V
V
EXTERNAL OSCILLATOR
= 0.01 F
I
I
I
I
LEAK
LEAK
LEAK
LEAK
= 100pF
IN
CC
CC
SOURCE
U
= 0pF
R
SOURCE
I
I
I
I
LEAK
LEAK
LEAK
LEAK
( )
at IN
R
R
R
R
SW
SW
SW
SW
IN
20k
20k
20k
20k
W
(TYP)
(TYP)
(TYP)
(TYP)
+ C
+
Figure 16. LTC2413 Equivalent Analog Input Circuit
or IN
PAR
2413 F18
) closer to 5pF
PAR
(Small C
2413
U
F16
capacitor
IN
C
18pF
(TYP)
EQ
)
Figure 19. –FS Error vs R
I IN
I IN
I REF
I REF
where
V
V
V
V
R
R
REF
REFCM
IN
INCM
EQ
EQ
V
V
INCM
INCM
IN
AVG
AVG
: :
3 97
REF
0 555 10
+ 0.5V
– 0.5V
AVG
.
AVG
.
Figure 17. An RC Network at IN
IN
–10
–20
–30
–40
–50
M
REF
IN
V
1.E+00 1.E+01 1.E+02 1.E+03 1.E+04 1.E+05
IN
IN
IN
0
V
1 5
2
IN
REF
.
1 5
IN
INTERNAL OSCILLATOR
.
2
12
V
0 5
V
REF
REF
IN
IN
F
T
INCM
0 5
V
REF
.
V
O
A
CC
REF
+
INCM
.
R
R
V
/
= GND
= 25 C
SOURCE
SOURCE
+
= GND
= 2.5V
REF
f
= 5V
EOSC
R
0 5
C
= 5V
= GND
R
0 5
EQ
C
.
IN
C
V
EQ
.
IN
V
IN
REFCM
= 0.001 F
INCM
EXTERNAL OSCILLATOR
C
V
V
= 0.01 F
R
= 100pF
IN
REFCM
INCM
R
EQ
SOURCE
EQ
R
= 0pF
SOURCE
C
C
V
REFCM
IN
IN
V
REFCM
at IN
( )
C
C
V
+
REF
PAR
PAR
20pF
20pF
V
or IN
REF
+
V
IN
2
and IN
LTC2413
V
R
IN
2
EQ
R
2413 F19
EQ
IN
IN
LTC2413
(Small C
+
2413
sn2413 2413fs
F17
25
IN
)

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