current-output digital-to-analog converter. It operates from
a single 3V to 5V supply and is guaranteed monotonic
over temperature. The LTC2752A provides full 16-bit
performance (±1LSB INL and DNL, max) over temperature
without any adjustments. This SoftSpan™ DAC offers
six output ranges (up to ±10V) that can be programmed
through the 3-wire SPI serial interface, or pinstrapped for
operation in a single range.
Any on-chip register (including DAC output-range set-
tings) can be read for verification in just one instruction
cycle; and if you change register content, the altered
register will be automatically read back during the next
instruction cycle.
Voltage-controlled offset and gain adjustments are also
provided; and the power-on reset circuit and
CLR
pin both
reset the DAC outputs to 0V regardless of output range.
L,
LT, LTC, LTM, Linear Technology and the Linear logo are registered trademarks and
SoftSpan is a trademark of Linear Technology Corporation. All other trademarks are the property
of their respective owners. Protected by U.S. Patents, including 5481178.
n
n
n
n
n
n
n
n
n
Program or Pin-Strap Six Output Ranges
0V to 5V, 0V to 10V, –2.5V to 7.5V, ±2.5V, ±5V, ±10V
Maximum 16-Bit INL Error: ±1 LSB over
Temperature
Guaranteed Monotonic over Temperature
Glitch Impulse 0.6nV•s (3V), 2.2nV•s (5V)
Serial Readback of All On-Chip Registers
1μA Maximum Supply Current
2.7V to 5.5V Single-Supply Operation
16-Bit Settling Time: 2µs
Voltage-Controlled Offset and Gain Trims
Clear and Power-On-Reset to 0V Regardless of
Output Range
48-Pin 7mm
×
7mm LQFP Package
applicaTions
n
n
n
n
High Resolution Offset and Gain Adjustment
Process Control and Industrial Automation
Automatic Test Equipment
Data Acquisition Systems
Typical applicaTion
Dual 16-Bit V
OUT
DAC with Software-Selectable Ranges
REFERENCE
5V
R
COMA
R
OFSA
REFA
R
INA
DAC A
V
DD
SPI with READBACK
GND
LTC2752
I
OUT2A
V
OSADJA
R
FBB
INL (LSB)
DAC B
I
OUT2B
V
OSADJB
R
OFSB
REFB
R
COMB
R
INB
GE
ADJB
ALL AMPLIFIERS 1/2 LT1469
REFERENCE
5V
+
–
I
OUT1B
+
–
–
+
+
–
GE
ADJA
Integral Nonlinearity (INL)
R
FBA
I
OUT1A
1.0
0.8
V
OUTA
0.6
0.4
0.2
0
–0.2
–0.4
–0.6
–0.8
–1.0
0
16384
32768
CODE
49152
65535
2752 TA01b
±10V RANGE
V
OUTB
2752 TA01
2752f
LTC2752
absoluTe MaxiMuM raTings
(Notes 1, 2)
pin conFiguraTion
TOP VIEW
R
OFSA
R
OFSA
R
FBA
R
FBA
I
OUT1A
V
OSADJA
V
OSADJB
I
OUT1B
R
FBB
R
FBB
R
OFSB
R
OFSB
REFA 1
REFA 2
R
COMA
3
GE
ADJA
4
R
INA
5
R
INA
6
GND 7
I
OUT2AS
8
I
OUT2AF
9
GND 10
CS/LD
11
SDI 12
48
47
46
45
44
43
42
41
40
39
38
37
I
OUT1X
, I
OUT2X
to GND............................................±0.3V
R
INX
, R
COMX
, REFX, R
FBX
, R
OFSX
, V
OSADJX
,
GE
ADJX
to GND ....................................................... ±18V
V
DD
to GND .................................................. –0.3V to 7V
Digital Inputs to GND ................................... –0.3V to 7V
Digital Outputs to GND ..... –0.3V to V
DD
+0.3V (max 7V)
Operating Temperature Range
LTC2752C ................................................ 0°C to 70°C
LTC2752I .............................................–40°C to 85°C
Maximum Junction Temperature .......................... 150°C
Storage Temperature Range .................. –65°C to 150°C
Lead Temperature (Soldering, 10 sec)................... 300°C
36
35
34
33
32
31
30
29
28
27
26
25
REFB
REFB
R
COMB
GE
ADJB
R
INB
R
INB
GND
I
OUT2BS
I
OUT2BF
GND
LDAC
S2
LX PACKAGE
48-LEAD (7mm 7mm) PLASTIC LQFP
T
JMAX
= 150°C,
θ
JA
= 58°C/W
orDer inForMaTion
LEAD FREE FINISH
LTC2752BCLX#PBF
LTC2752BILX#PBF
LTC2752ACLX#PBF
LTC2752AILX#PBF
PART MARKING*
LTC2752LX
LTC2752LX
LTC2752LX
LTC2752LX
PACKAGE DESCRIPTION
48-Lead (7mm
×
7mm) Plastic LQFP
48-Lead (7mm
×
7mm) Plastic LQFP
48-Lead (7mm
×
7mm) Plastic LQFP
48-Lead (7mm
×
7mm) Plastic LQFP
TEMPERATURE RANGE
0°C to 70°C
–40°C to 85°C
0°C to 70°C
–40°C to 85°C
Consult LTC Marketing for parts specified with wider operating temperature ranges. *The temperature grade is identified by a label on the shipping container.
Consult LTC Marketing for information on non-standard lead based finish parts.
For more information on lead free part marking, go to:
http://www.linear.com/leadfree/
This product is only offered in trays. For more information go to:
http://www.linear.com/packaging/
SCK 13
SRO 14
GND 15
V
DD
16
GND 17
GND 18
CLR
19
RFLAG
20
DNC 21
M-SPAN 22
S0 23
S1 24
2752f
LTC2752
elecTrical characTerisTics
SYMBOL
PARAMETER
Resolution
Monotonicity
DNL
INL
GE
Differential Nonlinearity
Integral Nonlinearity
Gain Error
Gain Error Temperature
Coefficient
BZE
Bipolar Zero Error
Bipolar Zero Temperature
Coefficient
Unipolar Zero-Scale Error
PSR
I
LKG
Power Supply Rejection
I
OUT1
Leakage Current
Unipolar Ranges (Note 3)
V
DD
= 5V, ±10%
V
DD
= 3V, ±10%
T
A
= 25°C
T
MIN
to T
MAX
l
l
l
V
DD
= 5V, V
RINX
= 5V unless otherwise specified. The
l
denotes the
specifications which apply over the full operating temperature range, otherwise specifications are at T
A
= 25°C.
CONDITIONS
l
l
l
l
MIN
16
16
LTC2752B
TYP
MAX
MIN
16
16
LTC2752A
TYP
MAX
UNITS
Bits
Bits
Static Performance
±1
±2
±20
±0.25
±0.2
±0.4
±2
±0.25
±1
±1
±12
LSB
LSB
LSB
ppm/°C
All Output Ranges
∆Gain/∆Temp
All Bipolar Ranges
l
l
±12
±0.15
±0.01
±1
±0.4
±1
±0.05
±2
±5
±1
±0.15
±0.01
±0.03
±0.1
±0.05
±8
LSB
ppm/°C
±1
±0.2
±0.5
±2
±5
LSB
LSB/V
LSB/V
nA
nA
l
V
DD
= 5V, V
RINX
= 5V unless otherwise specified. The
l
denotes specifications that apply over the full operating temperature range,
otherwise specifications are at T
A
= 25°C.
SYMBOL
Analog Pins
Reference Inverting Resistors
R
REF
R
FB
R
OFS
R
VOSADJ
R
GEADJ
C
IOUT1
DAC Input Resistance
Feedback Resistors
Bipolar Offset Resistors
Offset Adjust Resistors
Gain Adjust Resistors
Output Capacitance
Full-Scale
Zero-Scale
Span Code = 0000, 10V Step. To ±0.0015% FS
(Note 7)
V
DD
= 5V (Note 8)
V
DD
= 3V (Note 8)
(Note 9)
0V to 5V Range, V
REF
= 3V
RMS
,
Code = Full Scale, –3dB BW
0V to 5V Range, V
REF
= ±10V, 10kHz
Sine Wave
(Note 10)
(Note 11) Multiplying
(Note 12) at I
OUT1
(Note 4)
(Notes 5, 6)
(Note 6)
(Note 6)
l
l
l
l
l
l
PARAMETER
CONDITIONS
MIN
16
8
8
16
1024
2048
TYP
20
10
10
20
1280
2560
90
40
2
2.2
0.6
2
1
0.4
–109
–108
13
MAX
UNITS
kΩ
kΩ
kΩ
kΩ
kΩ
kΩ
pF
Dynamic Performance
Output Settling Time
Glitch Impulse
Digital-to-Analog Glitch Impulse
Reference Multiplying BW
Multiplying Feedthrough Error
Analog Crosstalk
THD
Total Harmonic Distortion
Output Noise Voltage Density
μs
nV•s
nV•s
nV•s
MHz
mV
dB
dB
nV/√Hz
2752f
LTC2752
elecTrical characTerisTics
SYMBOL
Power Supply
V
DD
I
DD
Digital Inputs
V
IH
V
IL
Digital Input High Voltage
Digital Input Low Voltage
Hysteresis Voltage
I
IN
C
IN
Digital Outputs
V
OH
V
OL
Digital Output High Voltage
Digital Output Low Voltage
I
OH
= 200µA, 2.7V ≤ V
DD
≤ 5.5V
I
OL
= 200µA, 2.7V ≤ V
DD
≤ 5.5V
l
l
V
DD
= 5V, V
RINX
= 5V unless otherwise specified. The
l
denotes the
specifications which apply over the full operating temperature range, otherwise specifications are at T
A
= 25°C.
PARAMETER
Supply Voltage
V
DD
Supply Current
Digital Inputs = 0V or V
DD
3.3V ≤ V
DD
≤ 5.5V
2.7V ≤ V
DD
< 3.3V
4.5V < V
DD
≤ 5.5V
2.7V ≤ V
DD
≤ 4.5V
V
IN
= GND to V
DD
V
IN
= 0V (Note 13)
CONDITIONS
l
l
MIN
2.7
TYP
MAX
5.5
UNITS
V
μA
V
V
0.5
2.4
2
1
l
l
l
l
0.8
0.6
0.1
±1
6
V
DD
– 0.4
0.4
V
V
V
µA
pF
V
V
Digital Input Current
Digital Input Capacitance
l
l
TiMing characTerisTics
otherwise specifications are at T
A
= 25°C.
PARAMETER
SDI Valid to SCK Set-Up
SDI Valid to SCK Hold
SCK High Time
SCK Low Time
CS/LD
Pulse Width
LSB SCK High to
CS/LD
High
CS/LD
Low to SCK Positive Edge
CS/LD
High to SCK Positive Edge
SRO Propagation Delay
CLR
Pulse Width Low
LDAC
Pulse Width Low
CLR
Low to
RFLAG
Low
CS/LD
High to
RFLAG
High
SCK Frequency
V
DD
= 2.7V to 3.3V
t
1
t
2
t
3
t
4
t
5
t
6
t
7
SDI Valid to SCK Set-Up
SDI Valid to SCK Hold
SCK High Time
SCK Low Time
CS/LD
Pulse Width
LSB SCK High to
CS/LD
High
CS/LD
Low to SCK Positive Edge
SYMBOL
t
1
t
2
t
3
t
4
t
5
t
6
t
7
t
8
t
9
t
10
t
11
t
12
t
13
V
DD
= 4.5V to 5.5V
The
l
denotes specifications that apply over the full operating temperature range,
CONDITIONS
l
l
l
l
l
l
l
l
MIN
7
7
11
11
9
4
4
4
TYP
MAX
UNITS
ns
ns
ns
ns
ns
ns
ns
ns
C
LOAD
= 10pF
l
l
l
18
36
15
50
40
40
9
9
15
15
12
5
5
ns
ns
ns
ns
ns
MHz
ns
ns
ns
ns
ns
ns
ns
2752f
C
LOAD
= 10pF (Note 13)
C
LOAD
= 10pF (Note 13)
50% Duty Cycle (Note 14)
l
l
l
l
l
l
l
l
l
l
LTC2752
TiMing characTerisTics
otherwise specifications are at T
A
= 25°C.
PARAMETER
CS/LD
High to SCK Positive Edge
SRO Propagation Delay
CLR
Pulse Width Low
LDAC
Pulse Width Low
CLR
Low to
RFLAG
Low
CS/LD
High to
RFLAG
high
SCK Frequency
C
LOAD
= 10pF (Note 13)
C
LOAD
= 10pF (Note 13)
50% Duty Cycle (Note 14)
C
LOAD
= 10pF
SYMBOL
t
8
t
9
t
10
t
11
t
12
t
13
The
l
denotes specifications that apply over the full operating temperature range,
CONDITIONS
l
l
l
l
l
l
l
MIN
5
TYP
MAX
26
UNITS
ns
ns
ns
ns
60
20
70
60
25
ns
ns
MHz
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:
Continuous operation above the specified maximum operating
junction temperature may impair device reliability.
Note 3:
Calculation from feedback resistance and I
OUT1
leakage current
specifications; not production tested. In most applications, unipolar zero-
scale error is dominated by contributions from the output amplifier.
Note 4:
Input resistors measured from R
INX
to R
COMX
; feedback resistors
measured from R
COMX
to REFX.
Note 5:
DAC input resistance is independent of code.
Note 6:
Parallel combination of the resistances from the specified pin to
I
OUT1X
and from the specified pin to I
OUT2X
.
Note 7:
Using LT1468 with C
FEEDBACK
= 27pF. A ±0.0015% settling time
of 1.7μs can be achieved by optimizing the time constant on an individual
basis. See Application Note 74, Component and Measurement Advances
Ensure 16-Bit DAC Settling Time.
Note 8:
Measured at the major carry transition, 0V to 5V range. Output
amplifier: LT1468; C
FB
= 50pF.
Note 9.
Full-scale transition; REF = 0V.
Note 10.
Analog Crosstalk is defined as the AC voltage ratio V
OUTB
/V
REFA
,
expressed in dB. REFB is grounded, and DAC B is set to 0V-5V span and
zero-, mid- or full- scale code. V
REFA
is a 3V
RMS
, 1kHz sine wave.
Note 11.
REF = 6V
RMS
at 1kHz. 0V to 5V range. DAC code = FS. Output
amplifier = LT1469.
Note 12.
Calculation from V
n
= √4kTRB, where k = 1.38E-23 J/°K
(Boltzmann constant), R = resistance (Ω), T = temperature (°K), and
B = bandwidth (Hz). 0V to 5V Range; zero-, mid-, or full- scale.
The poster works in Wuhan and changed his career to Linux software. A few days ago, he interviewed a company that makes medical equipment. After two interviews, it seems that he passed. At present, he...
Using offline IDE development can be more flexible. This time, the temperature and humidity, light intensity, air quality, power and charging status are collected and displayed on the screen.The opera...
I am interested in embedded systems and want to take a postgraduate entrance examination to continue my studies, but I don't know which universities are strong in embedded systems. I hope you can give...
[b]With the advent of SoC design elements such as the MIPS32 1004K Coherent Processing System (CPS), on-chip symmetric multiprocessing (SMP) with a single operating system has become a real design cho...
My wife is going to have a baby, and it came out by caesarean section, it's a son. !!! The company only gave me 2 days off, damn, I didn't take care of anything and stayed at home for half a month. I ...
UHF and HF are both general technology categories, but each category has independent supporting protocols. HF is more consistent in the 13.56MHz frequency band, although there are many internation...[Details]
A biped robot joint constructed by pneumatic artificial muscles is introduced. The joint uses the flexible characteristics of pneumatic artificial muscles to effectively control the impact of the la...[Details]
This issue will briefly introduce the test related to spectrum - occupied bandwidth.
Definition: Occupied bandwidth refers to the bandwidth corresponding to 99% of the total transmitted power, cent...[Details]
As microcontrollers become less expensive and more powerful, electrical designers are finding it more cost-effective to use multiple small controllers in both single-board and multi-board systems. ...[Details]
DC regulated power supply is a commonly used electronic device, which can ensure stable output voltage when the grid voltage fluctuates or the load changes. A low ripple, high-precision regulated p...[Details]
Lithium-ion batteries have a high energy-to-weight and energy-to-volume ratio, no memory effect, can be recharged many times, have a long service life, and are becoming increasingly cheaper. A good...[Details]
Fetal monitoring is an important means to ensure the safety of perinatal mothers and fetuses and achieve eugenics. Intelligent fetal monitoring is a monitoring method that analyzes the health stat...[Details]
1 Introduction
The high temperature tester is mainly used for temperature tracking measurement and data acquisition during the heating process. By systematically analyzing the test data,...[Details]
l Introduction
Traditional human-computer communication is achieved through keyboard or mouse. The speed of information exchange is relatively slow, and the operator is required to have certain...[Details]
I hope my mobile phone has more functions, I hope my digital camera is smaller, I hope my Walkman can listen longer... Consumers are always full of expectations for the performance of portable electro...[Details]
Agilent Technologies Inc. has announced a new Unlicensed Mobile Access/Generic Access Network (UMA/GAN) test capability on 3GSM that is both extremely affordable and easy to use. The industry's fi...[Details]
The main factor causing cost variation in digital display devices today is the display screen. In the design phase, continuously promoting platform-based display design decisions can greatly reduce...[Details]
Use physical methods and electronic technology to automatically detect intrusions occurring in the monitored area, generate an alarm signal, and assist on-duty personnel in notifying them of the ar...[Details]
"Where am I? Where am I going? Where is he/she? How far is he/she from me?..." Do you often have such questions like me? In fact, who can deny that these are questions that we often think about, ev...[Details]
On July 1 this year, the "Civil Airport Management Regulations" will be officially implemented. The new regulations put forward higher requirements for the safe operation of airports. At the same t...[Details]