multiplying parallel-input, current-output DACs. These
DACs operate from a single 2.7V to 5.5V supply and are all
guaranteed monotonic over temperature. The LTC2753A-16
provides 16-bit performance (±1LSB INL and DNL) over
temperature without any adjustments. These SoftSpan™
DACs offer six output ranges—two unipolar and four
bipolar—that can be programmed through the parallel
interface, or pinstrapped for operation in a single range.
The LTC2753 DACs use a bidirectional input/output parallel
interface that allows readback of any on-chip register. A
power-on reset circuit resets the DAC outputs to 0V when
power is initially applied. A logic low on the
CLR
pin asyn-
chronously clears the DACs to 0V in any output range.
The parts are specified over commercial and industrial
temperature ranges.
, LT LTC and LTM are registered trademarks of Linear Technology Corporation.
,
SoftSpan is a trademark of Linear Technology Corporation. All other trademarks are the
property of their respective owners.
■
■
■
■
■
■
■
■
■
■
Six Programmable Output Ranges
Unipolar: 0V to 5V, 0V to 10V
Bipolar: ±5V, ±10V, ±2.5V, –2.5V to 7.5V
Maximum 16-Bit INL Error: ±1 LSB over Temperature
Low 1μA (Maximum) Supply Current
Guaranteed Monotonic over Temperature
Low Glitch Impulse 1nV•s
2.7V to 5.5V Single Supply Operation
2μs Settling Time to ±1 LSB
Parallel Interface with Readback of All Registers
Asynchronous
CLR
Pin Clears DAC Outputs to 0V in
Any Output Range
Power-On Reset to 0V
48-Pin 7mm × 7mm QFN Package
APPLICATIONS
■
■
■
■
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
V
REF
5V
R
OFSA
47
R
IN
2
LTC2753-16
46 R
FBA
15pF
45 I
OUT1A
DAC A
R2
REFA 48
REFB 39
4 I
OUT2A
44 R
VOSA
43 R
VOSB
LTC2753-16 Integral Nonlinearity (INL)
V
DD
= 5V
0.8
V
REF
= 5V
±10V
RANGE
0.6
1.0
+
1/2 LT1469
R1
R
COM
1
–
150pF
INL (LSB)
DAC B
42 I
OUT1B
R
OFSB
40
SPAN I/O
DATA I/O
3
16
I/O PORT
I/O PORT
15pF
41 R
FBB
–
+
32 I
OUT2B
+
1/2 LT1469
V
OUTB
2753 TA01
–
1/2 LT1469
V
OUTA
0.4
0.2
0.0
–0.2
–0.4
–0.6
–0.8
–1.0
0
16384
32768
CODE
49152
25°C
90°C
–45°C
65535
2753 TA01b
2753f
1
LTC2753
ABSOLUTE MAXIMUM RATINGS
(Notes 1, 2)
I
OUT1X
, I
OUT2X
, R
COM
to GND .................................±0.3V
R
VOSX
, R
FBX
, R
OFSX
, R
IN
, REF
X
to GND ...................±15V
V
DD
to GND .................................................. –0.3V to 7V
Digital Inputs and Digital I/O
to GND ..........................–0.3V to V
DD
+0.3V (max 7V)
Operating Temperature Range
LTC2753C..................................................... 0°C to 70°C
LTC2753I .................................................. –40°C to 85°C
Maximum Junction Temperature........................... 125°C
Storage Temperature Range................... –65°C to 150°C
PIN CONFIGURATION
REFA
R
OFSA
R
FBA
I
OUT1A
R
VOSA
R
VOSB
I
OUT1B
R
FBB
R
OFSB
REFB
S1
WR
REFA
R
OFSA
R
FBA
I
OUT1A
R
VOSA
R
VOSB
I
OUT1B
R
FBB
R
OFSB
REFB
S1
WR
REFA
R
OFSA
R
FBA
I
OUT1A
R
VOSA
R
VOSB
I
OUT1B
R
FBB
R
OFSB
REFB
S1
WR
48 47 46 45 44 43 42 41 40 39 38 37
36
35
34
33
32
31
30
29
28
27
26
25
UPD
READ
D/S
S0
I
OUT2B
GND
NC
NC
NC
NC
D0
D1
R
COM
R
IN
S2
I
OUT2A
GND
D15
D14
D13
D12
D11
D10
D9
1
2
3
4
5
6
7
8
9
10
11
12
36
35
34
33
32
31
30
29
28
27
26
25
UPD
READ
D/S
S0
I
OUT2B
GND
NC
NC
D0
D1
D2
D3
49
13 14 15 16 17 18 19 20 21 22 23 24
D8
D7
V
DD
NC
A1
A0
GND
CLR
MSPAN
D6
D5
D4
LTC2753-16 UK PACKAGE
48-LEAD (7mm × 7mm) PLASTIC QFN
48 47 46 45 44 43 42 41 40 39 38 37
R
COM
R
IN
S2
I
OUT2A
GND
D11
D10
D9
D8
D7
D6
D5
1
2
3
4
5
6
7
8
9
10
11
12
36
35
34
33
32
31
30
29
28
27
26
25
UPD
READ
D/S
S0
I
OUT2B
GND
NC
NC
NC
NC
NC
NC
R
COM
R
IN
S2
I
OUT2A
GND
D13
D12
D11
D10
D9
D8
D7
1
2
3
4
5
6
7
8
9
10
11
12
48 47 46 45 44 43 42 41 40 39 38 37
49
49
13 14 15 16 17 18 19 20 21 22 23 24
D4
D3
V
DD
NC
A1
A0
GND
CLR
MSPAN
D2
D1
D0
13 14 15 16 17 18 19 20 21 22 23 24
D6
D5
V
DD
NC
A1
A0
GND
CLR
MSPAN
D4
D3
D2
LTC2753-14 UK PACKAGE
48-LEAD (7mm × 7mm) PLASTIC QFN
LTC2753-12 UK PACKAGE
48-LEAD (7mm × 7mm) PLASTIC QFN
T
JMAX
= 125°C,
θ
JA
= 29°C/W
EXPOSED PAD (PIN 49) IS GND, MUST BE SOLDERED TO PCB
T
JMAX
= 125°C,
θ
JA
= 29°C/W
EXPOSED PAD (PIN 49) IS GND, MUST BE SOLDERED TO PCB
T
JMAX
= 125°C,
θ
JA
= 29°C/W
EXPOSED PAD (PIN 49) IS GND, MUST BE SOLDERED TO PCB
ORDER INFORMATION
LEAD FREE FINISH
LTC2753CUK-12#PBF
LTC2753IUK-12#PBF
LTC2753CUK-14#PBF
LTC2753IUK-14#PBF
LTC2753BCUK-16#PBF
LTC2753BIUK-16#PBF
LTC2753ACUK-16#PBF
LTC2753AIUK-16#PBF
TAPE AND REEL
LTC2753CUK-12#TRPBF
LTC2753IUK-12#TRPBF
LTC2753CUK-14#TRPBF
LTC2753IUK-14#TRPBF
LTC2753BCUK-16#TRPBF
LTC2753BIUK-16#TRPBF
LTC2753ACUK-16#TRPBF
LTC2753AIUK-16#TRPBF
PART MARKING*
LTC2753UK-12
LTC2753UK-12
LTC2753UK-14
LTC2753UK-14
LTC2753UK-16
LTC2753UK-16
LTC2753UK-16
LTC2753UK-16
PACKAGE DESCRIPTION
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
48-Lead (7mm × 7mm) Plastic QFN
TEMPERATURE RANGE
0°C to 70°C
–40°C to 85°C
0°C to 70°C
–40°C to 85°C
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/
For more information on tape and reel specifications, go to:
http://www.linear.com/tapeandreel/
2753f
2
LTC2753
ELECTRICAL CHARACTERISTICS
SYMBOL PARAMETER
Static Performance
Resolution
Monotonicity
DNL
INL
GE
GE
TC
BZE
BZS
TC
PSR
I
LKG
C
IOUT1
Differential
Nonlinearity
Integral
Nonlinearity
Gain Error
Gain Error Temp-
erature Coefficient
Bipolar Zero Error
Bipolar Zero Temp-
erature Coefficient
Power Supply
Rejection
I
OUT1
Leakage
Current
Output
Capacitance
V
DD
= 5V, ±10%
V
DD
= 3V, ±10%
T
A
= 25°C
T
MIN
to T
MAX
Full-Scale
Zero Scale
●
●
●
●
●
●
V
DD
= 5V, V
REF
= 5V unless otherwise specified. The
●
denotes the
specifications which apply over the full operating temperature range, otherwise specifications are at T
A
= 25°C.
LTC2753-12
CONDITIONS
MIN
12
12
±1
±1
±0.5
±0.6
●
LTC2753-14
MIN
14
14
±1
±1
±1.5
±0.6
±1
±0.6
±0.5
±3
±5
TYP
MAX
LTC2753B-16
MIN
16
16
±1
±2
±20
±0.6
±12
±0.5
TYP
MAX
LTC2753A-16
MIN
16
16
±0.2
±0.4
±4
±0.6
±2
±0.5
±8
±1
±1
±14
TYP
MAX
UNITS
Bits
Bits
LSB
LSB
LSB
ppm/°C
LSB
ppm/°C
LSB/V
nA
pF
pF
TYP
MAX
All Output
Ranges
ΔGain/ΔTemp
All Bipolar
Ranges
●
±2
±0.2
±0.5
±0.025
±0.06
±0.05
±2
±5
±0.05
75
45
±0.1
±0.25
±2
±5
±0.05
75
45
±0.4
±1
±2
±5
±0.03 ±0.2
±0.1 ±0.5
±0.05
75
45
±2
±5
●
75
45
V
DD
= 5V, V
REF
= 5V unless otherwise specified. The
●
denotes specifications that apply over the full operating temperature range,
otherwise specifications are at T
A
= 25°C.
SYMBOL
Resistances (Note 3)
R1, R2
R
REF
R
FB
R
OFS
R
VOS
Reference Inverting Resistors
DAC Input Resistance
Feedback Resistor
Bipolar Offset Resistor
Offset Adjust Resistor
Output Settling Time
Glitch Impulse
Digital-to-Analog Glitch Impulse
Multiplying Feedthrough Error
THD
Total Harmonic Distortion
Output Noise Voltage Density
0V to 10V Range, 10V Step. To ±0.0015% FS
(Note 5)
(Note 6)
(Note 7)
0V to 10V Range, V
REF
= ±10V, 10kHz
Sine Wave
(Note 8) Multiplying
(Note 9) at I
OUT1
(Note 3)
(Note 3)
(Note 4)
●
●
●
●
●
PARAMETER
CONDITIONS
MIN
16
8
8
16
800
TYP
20
10
10
20
1000
2
1
1
0.5
–110
13
MAX
UNITS
kΩ
kΩ
kΩ
kΩ
kΩ
μs
nV•s
nV•s
mV
dB
⎯
nV/√H
⎯
z
Dynamic Performance
2753f
3
LTC2753
ELECTRICAL CHARACTERISTICS
SYMBOL
Power Supply
V
DD
I
DD
Digital Inputs
V
IH
V
IL
I
IN
C
IN
Digital Outputs
V
OH
V
OL
I
OH
= 200μA
I
OL
= 200μA
●
●
V
DD
= 5V, V
REF
= 5V unless otherwise specified. The
●
denotes the
specifications which apply over the full operating temperature range, otherwise specifications are at T
A
= 25°C.
PARAMETER
Supply Voltage
Supply Current, V
DD
Digital Input High Voltage
Digital Input Low Voltage
Digital Input Current
Digital Input Capacitance
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 10)
CONDITIONS
●
●
MIN
2.7
TYP
MAX
5.5
UNITS
V
μA
V
V
0.5
2.4
2
1
●
●
●
●
●
●
0.8
0.6
±1
6
V
DD
– 0.4
0.4
V
V
μA
pF
V
V
TIMING CHARACTERISTICS
otherwise specifications are at T
A
= 25°C.
SYMBOL
PARAMETER
V
DD
= 4.5V to 5.5V
Write and Update Timing
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
t
14
t
15
t
26
t
27
I/O Valid to
WR
Rising Edge Set-Up
I/O Valid to
WR
Rising Edge Hold
WR
Pulse Width Low
UPD Pulse Width High
UPD Falling Edge to
WR
Falling Edge
WR
Rising Edge to UPD Rising Edge
D/S
Valid to
WR
Falling Edge Set-Up Time
WR
Rising Edge to
D/S
Valid Hold Time
A1-A0 Valid to
WR
Falling Edge Setup Time
WR
Rising Edge to A1-A0 Valid Hold Time
A1-A0 Valid to UPD Rising Edge Setup Time
UPD Falling Edge to A1-A0 Valid Hold Time
WR
Rising Edge to READ Rising Edge
READ Falling Edge to
WR
Falling Edge
READ Rising Edge to I/O Propagation Delay
A1-A0 Valid to READ Rising Edge Setup Time
READ Falling to A1-A0 Valid Hold Time
The
●
denotes specifications that apply over the full operating temperature range,
CONDITIONS
MIN
TYP
MAX
UNITS
●
●
●
●
7
7
15
15
0
0
7
7
5
0
9
7
7
20
40
20
0
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
ns
No Data Shoot-Through
(Note 10)
●
●
●
●
●
●
●
●
Readback Timing
●
(Note 10)
C
L
= 10pF
(Note 10)
●
●
●
●
2753f
4
LTC2753
TIMING CHARACTERISTICS
otherwise specifications are at T
A
= 25°C.
PARAMETER
UPD Valid to I/O Propagation Delay
D/S
Valid to READ Rising Edge
READ Rising Edge to UPD Rising Edge
UPD Falling Edge to READ Falling Edge
READ Falling Edge to UPD Rising Edge
I/O Bus Hi-Z to READ Rising Edge
READ Falling Edge to I/O Bus Active
CLR
Pulse Width Low
SYMBOL
t
17
t
18
t
19
t
20
t
22
t
23
t
24
CLR
Timing
t
25
●
The
●
denotes specifications that apply over the full operating temperature range,
With the continuous development of electronic technology, the detection and control of various physical quantities can be realized. Microcomputer detection and control systems are not only used in ind...
I have been burning nand using nor boot on the development board. But for production, I must use a burner. The files I need to burn are: block0img.nb0, eboot.bin. In NBL2, I can see: #define VFL_EBOOT...
[size=4]1. In wireless communication, the carrier bandwidth is the difference between the highest and lowest frequencies of the carrier, B=Fh-Fl. [/size] [size=4] [/size] [size=4]2. In fact, it is the...
"Have you set your calendar reminder?"
On August 24, Nvidia Robotics' official account posted a photo of a black gift box on a social media platform, with an attached greeting card sig...[Details]
The most significant feature of IPS panels is that both electrodes are located on the same surface, unlike other LCD panels, which have electrodes arranged on top and bottom surfaces in a three-dim...[Details]
Reflow soldering is one of the most commonly used methods in electronics manufacturing, allowing for the soldering of large numbers of components in a relatively short time. However, any experience...[Details]
Preface
Low-voltage motors are widely used in nonferrous metallurgical plants. Their abnormal operation not only impacts normal production but can also threaten human life. Therefore, providin...[Details]
"I want to ask why there are so many manufacturers making mobile phone CPUs, but only Intel and AMD make computer CPUs?"
The progress of domestic PC CPU production has disappointed many ...[Details]
0 Introduction
DVI (Digital Visual Interface) is a hot topic in current digital display research and application. Video processing technologies for DVI output not only address issues such as h...[Details]
As the power density of modern electronic systems continues to increase, effective thermal management has become critical to ensuring system performance, reliability, and longevity—especially in hi...[Details]
Reasons for the wear of the roller press reducer shaft:
1. Since the expansion sleeve is subjected to a large torque, the mating surfaces of the shaft and the sleeve move relative to each other...[Details]
Naxin Micro releases the NS800RT737x high-performance real-time control MCU (DSP), enabling core control in the industrial and energy sectors.
In power electronics and electric drive...[Details]
The electric motor is one of the most widely used power equipment and plays a vital role in the national economy. However, its high failure rate causes huge economic losses to industrial and agricu...[Details]
introduction
Commercial air conditioner PCBs involve both high-voltage and low-voltage power. The power supply for commercial air conditioners often passes through the controller. This forces ...[Details]
Simply put, the cockpit domain control chip is the chip that controls the cockpit domain. It's like the brain of the cockpit, responsible for processing and controlling signals from various devices...[Details]
Xenon lamp principle
Xenon lamps are high-pressure gas discharge lamps that are filled with a mixture of inert gases including xenon and do not have the filament of halogen lamps. They are ref...[Details]
NVIDIA Jetson + Isa K
solutions
for the humanoid field
A detailed explanation of the solution
, covering chip models, software platforms, development toolchains, application scenarios,...[Details]
Circuit protection techniques and board layout strategies can help improve safety, reliability, and connectivity. Wearable technology has a vulnerability that's unlikely to make it into IoT headlin...[Details]