taneous sampling 16-bit A/D converters designed for
digitizing high frequency, wide dynamic range signals.
They are perfect for demanding communications applica-
tions with AC performance that includes 76.8dB SNR and
90dB spurious free dynamic range (SFDR). Ultralow jitter
of 0.07ps
RMS
allows undersampling of IF frequencies with
excellent noise performance.
DC specs include ±2LSB INL (typ), ±0.5LSB DNL (typ)
and no missing codes over temperature. The transition
noise is 3.4LSB
RMS
.
To minimize the number of data lines the digital outputs
are serial LVDS. Each channel outputs two bits or four bits
at a time. At lower sampling rates there is a one bit per
channel option. The LVDS drivers have optional internal
termination and adjustable output levels to ensure clean
signal integrity.
The ENC
+
and ENC
–
inputs may be driven differentially or
single ended with a sine wave, PECL, LVDS, TTL or CMOS
inputs. An internal clock duty cycle stabilizer allows high
performance at full speed for a wide range of clock duty
cycles.
L,
LT, LTC, LTM, Linear Technology and the Linear logo are registered trademarks of Linear
Technology Corporation. All other trademarks are the property of their respective owners.
2-Channel Simultaneous Sampling ADC
Serial LVDS Outputs: 1, 2 or 4 Bits per Channel
76.8dB SNR
90dB SFDR
Low Power: 432mW/360mW/249mW Total
216mW/180mW/125mW per Channel
Single 1.8V Supply
Selectable Input Ranges: 1V
P-P
to 2V
P-P
550MHz Full-Power Bandwidth S/H
Shutdown and Nap Modes
Serial SPI Port for Configuration
52-Pin (7mm
×
8mm) QFN Package
APPLICATIONS
n
n
n
n
n
n
Communications
Cellular Base Stations
Software-Defined Radios
Portable Medical Imaging
Multi-Channel Data Acquisition
Nondestructive Testing
TYPICAL APPLICATION
2-Tone FFT, f
IN
= 70MHz and 69MHz
1.8V
V
DD
CH1
ANALOG
INPUT
CH2
ANALOG
INPUT
ENCODE
INPUT
S/H
16-BIT
ADC CORE
16-BIT
ADC CORE
1.8V
OV
DD
OUT1A
OUT1B
OUT1C
OUT1D
OUT2A
OUT2B
OUT2C
OUT2D
DATA CLOCK OUT
FRAME
0
–10
–20
–30
AMPLITUDE (dBFS)
–40
–50
–60
–70
–80
S/H
DATA
SERIALIZER
SERIALIZED
LVDS
OUTPUTS
PLL
–90
–100
–110
–120
GND
OGND
219543 TA01a
0
10
20
30
40
FREQUENCY (MHz)
50
60
219543
TA01b
219543f
1
LTC2195
LTC2194/LTC2193
ABSOLUTE MAXIMUM RATINGS
(Notes 1, 2)
PIN CONFIGURATION
TOP VIEW
OUT1A
+
OUT1A
–
OUT1B
+
OUT2C
–
OUT1B
–
40 OUT1C
+
39 OUT1C
–
38 OUT1D
+
37 OUT1D
–
36 DCO
+
35 DCO
–
53
GND
34 OV
DD
33 OGND
32 FR
+
31 FR–
30 OUT2A
+
29 OUT2A
–
28 OUT2B
+
27 OUT2B
–
15 16 17 18 19 20 21 22 23 24 25 26
V
DD
V
DD
CS
SCK
ENC
+
ENC
–
SDI
GND
–
Supply Voltages
V
DD
, OV
DD
................................................ –0.3V to 2V
Analog Input Voltage
A
IN
+, A
IN
–, PAR/SER, SENSE
(Note 3) ....................................–0.3V to (V
DD
+ 0.2V)
Digital Input Voltage
ENC
+
, ENC
–
,
CS,
SDI, SCK (Note 4) ...... –0.3V to 3.9V
SDO (Note 4) ............................................ –0.3V to 3.9V
Digital Output Voltage ................ –0.3V to (OV
DD
+ 0.3V)
Operating Temperature Range
LTC2195C, LTC2194C, LTC2193C............. 0°C to 70°C
LTC2195I, LTC2194I, LTC2193I ............ –40°C to 85°C
Storage Temperature Range................... –65°C to 150°C
SENSE
V
REF
GND
GND
52 51 50 49 48 47 46 45 44 43 42 41
V
CM1
1
GND 2
A
IN1+
3
A
IN1–
4
GND 5
REFH 6
REFL 7
REFH 8
REFL 9
PAR/SER 10
A
IN2+
11
A
IN2–
12
GND 13
V
CM2
14
OUT2D
+
OUT2C
+
GND
SDO
V
DD
V
DD
UKG PACKAGE
52-LEAD (7mm
×
8mm) PLASTIC QFN
T
JMAX
= 150°C,
θ
JA
= 28°C/W
EXPOSED PAD (PIN 53) IS GND, MUST BE SOLDERED TO PCB
ORDER INFORMATION
LEAD FREE FINISH
LTC2195CUKG#PBF
LTC2195IUKG#PBF
LTC2194CUKG#PBF
LTC2194IUKG#PBF
LTC2193CUKG#PBF
LTC2193IUKG#PBF
TAPE AND REEL
LTC2195CUKG#TRPBF
LTC2195IUKG#TRPBF
LTC2194CUKG#TRPBF
LTC2194IUKG#TRPBF
LTC2193CUKG#TRPBF
LTC2193IUKG#TRPBF
PART MARKING*
LTC2195UKG
LTC2195UKG
LTC2194UKG
LTC2194UKG
LTC2193UKG
LTC2193UKG
PACKAGE DESCRIPTION
52-Lead (7mm
×
8mm) Plastic QFN
52-Lead (7mm
×
8mm) Plastic QFN
52-Lead (7mm
×
8mm) Plastic QFN
52-Lead (7mm
×
8mm) Plastic QFN
52-Lead (7mm
×
8mm) Plastic QFN
52-Lead (7mm
×
8mm) 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
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/
OUT2D
219543f
2
LTC2195
LTC2194/LTC2193
CONVERTER CHARACTERISTICS
PARAMETER
Resolution (No Missing Codes)
Integral Linearity Error
Differential Linearity Error
Offset Error
Gain Error
Offset Drift
Full-Scale Drift
Gain Matching
Offset Matching
Transition Noise
Internal Reference
External Reference
Differential Analog Input
(Note 6)
Differential Analog Input
(Note 7)
Internal Reference
External Reference
CONDITIONS
l
l
l
l
l
The
l
denotes the specifications which apply over the full operating
temperature range, otherwise specifications are at T
A
= 25°C. (Note 5)
MIN
16
–7
–0.9
–7
–2.0
±2
±0.5
±1.5
±1.5
–0.7
±10
±30
±10
±0.3
±1.5
3.4
7
0.9
7
0.6
LTC2195
TYP
MAX
MIN
16
–7.5
–0.9
–7
–1.8
±2
±0.5
±1.5
±1.5
–0.5
±10
±30
±10
±0.3
±1.5
3.5
7.5
0.9
7
0.8
LTC2194
TYP
MAX
MIN
16
–7.5
–0.9
–7
–1.8
±2
±0.5
±1.5
±1.5
–0.5
±10
±30
±10
±0.3
±1.5
3.2
7.5
0.9
7
0.8
LTC2193
TYP
MAX
UNITS
Bits
LSB
LSB
mV
%FS
%FS
µV/°C
ppm/°C
ppm/°C
%FS
mV
LSB
RMS
ANALOG INPUT
SYMBOL
V
IN
V
IN(CM)
V
SENSE
I
INCM
I
IN1
I
IN2
I
IN3
t
AP
t
JITTER
CMRR
BW–3B
PARAMETER
The
l
denotes the specifications which apply over the full operating temperature range, otherwise
specifications are at T
A
= 25°C. (Note 5)
CONDITIONS
1.7V < V
DD
< 1.9V
Differential Analog Input (Note 8)
External Reference Mode
Per Pin, 125Msps
Per Pin, 105Msps
Per Pin, 80Msps
0 < A
IN
+, A
IN
– < V
DD
0 < PAR/SER < V
DD
0.625V < SENSE < 1.3V
Single-Ended Encode
Differential Encode
Figure 6 Test Circuit
l
l
l
l
l
l
MIN
0.7
0.625
TYP
1 to 2
V
CM
1.250
200
170
130
MAX
1.25
1.300
UNITS
V
P-P
V
V
µA
µA
µA
Analog Input Range (A
IN
+ – A
IN
–)
Analog Input Common Mode (A
IN
+ + A
IN
–)/2
External Voltage Reference Applied to SENSE
Analog Input Common Mode Current
Analog Input Leakage Current (No Encode)
PAR/SER Input Leakage Current
SENSE Input Leakage Current
Sample-and-Hold Acquisition Delay Time
Sample-and-Hold Acquisition Delay Jitter
Analog Input Common Mode Rejection Ratio
Full-Power Bandwidth
–1
–3
–6
0
0.07
0.09
80
550
1
3
6
µA
µA
µA
ns
ps
RMS
ps
RMS
dB
MHz
219543f
3
LTC2195
LTC2194/LTC2193
DYNAMIC ACCURACY
SYMBOL
SNR
PARAMETER
Signal-to-Noise Ratio
The
l
denotes the specifications which apply over the full operating temperature range,
otherwise specifications are at T
A
= 25°C. A
IN
= –1dBFS. (Note 5)
CONDITIONS
5MHz Input
70MHz Input
140MHz Input
l
LTC2195
MIN
TYP
MAX
74.5
76.8
76.6
76.1
90
89
84
90
89
84
95
95
95
76.6
76.2
75.1
–110
LTC2194
MIN
TYP
MAX
74.8
76.7
76.5
76
90
89
84
90
89
84
95
95
95
76.5
76.1
75
–110
LTC2193
MIN
TYP
MAX
75.1
77.1
76.9
76.4
90
89
84
90
89
84
95
95
95
76.9
76.5
75.3
–110
UNITS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBFS
dBc
SFDR
Spurious Free Dynamic Range 5MHz Input
2nd Harmonic
70MHz Input
140MHz Input
Spurious Free Dynamic Range 5MHz Input
3rd Harmonic
70MHz Input
140MHz Input
Spurious Free Dynamic Range 5MHz Input
4th Harmonic or Higher
70MHz Input
140MHz Input
l
79
81
81
l
81
81
82
l
88
89
89
S/(N+D)
Signal-to-Noise Plus
Distortion Ratio
Crosstalk
5MHz Input
70MHz Input
140MHz Input
10MHz Input
l
73.3
74
74.4
INTERNAL REFERENCE CHARACTERISTICS
PARAMETER
V
CM
Output Voltage
V
CM
Output Temperature Drift
V
CM
Output Resistance
V
REF
Output Voltage
V
REF
Output Temperature Drift
V
REF
Output Resistance
V
REF
Line Regulation
–400µA < I
OUT
< 1mA
1.7V < V
DD
< 1.9V
–600µA < I
OUT
< 1mA
I
OUT
= 0
1.225
CONDITIONS
I
OUT
= 0
MIN
The
l
denotes the specifications which apply over the full
operating temperature range, otherwise specifications are at T
A
= 25°C. (Note 5)
TYP
0.5
•
V
DD
±25
4
1.250
±25
7
0.6
1.275
MAX
0.5
•
V
DD
+ 25mV
UNITS
V
ppm/°C
Ω
V
ppm/°C
Ω
mV/V
0.5
•
V
DD
– 25mV
DIGITAL INPUTS AND OUTPUTS
The
l
denotes the specifications which apply over the full operating
temperature range, otherwise specifications are at T
A
= 25°C. (Note 5)
PARAMETER
CONDITIONS
SYMBOL
MIN
TYP
MAX
UNITS
ENCODE INPUTS (ENC
+
, ENC
–
)
Differential Encode Mode (ENC
–
Not Tied to GND)
V
ID
V
ICM
V
IN
R
IN
C
IN
Differential Input Voltage
Common Mode Input Voltage
Input Voltage Range
Input Resistance
Input Capacitance
(Note 8)
Internally Set
Externally Set (Note 8)
ENC
+
, ENC
–
to GND (Note 8)
See Figure 10
(Note 8)
l
l
l
0.2
1.1
0.2
10
3.5
1.2
1.6
3.6
V
V
V
V
kΩ
pF
219543f
4
LTC2195
LTC2194/LTC2193
DIGITAL INPUTS AND OUTPUTS
The
l
denotes the specifications which apply over the full operating
temperature range, otherwise specifications are at T
A
= 25°C. (Note 5)
PARAMETER
High Level Input Voltage
Low Level Input Voltage
Input Voltage Range
Input Resistance
Input Capacitance
High Level Input Voltage
Low Level Input Voltage
Input Current
Input Capacitance
Logic Low Output Resistance to GND
Logic High Output Leakage Current
Output Capacitance
Differential Output Voltage
Common Mode Output Voltage
On-Chip Termination Resistance
CONDITIONS
V
DD
=1.8V
V
DD
=1.8V
ENC
+
to GND
See Figure 11
(Note 8)
V
DD
=1.8V
V
DD
=1.8V
V
IN
= 0V to 3.6V
(Note 8)
V
DD
=1.8V, SDO = 0V
SDO = 0V to 3.6V
(Note 8)
100Ω Differential Load, 3.5mA Mode
100Ω Differential Load, 1.75mA Mode
100Ω Differential Load, 3.5mA Mode
100Ω Differential Load, 1.75mA Mode
Termination Enabled, OV
DD
= 1.8V
l
l
l
l
l
l
l
l
l
l
l
SYMBOL
V
IH
V
IL
V
IN
R
IN
C
IN
V
IH
V
IL
I
IN
C
IN
R
OL
I
OH
C
OUT
V
OD
V
OS
R
TERM
MIN
1.2
TYP
MAX
UNITS
V
Single-Ended Encode Mode (ENC
–
Tied to GND)
0.6
0
30
3.5
1.3
0.6
–10
3
200
–10
3
247
125
1.125
1.125
350
175
1.250
1.250
100
454
250
1.375
1.375
10
10
3.6
V
V
kΩ
pF
V
V
µA
pF
Ω
µA
pF
mV
mV
V
V
Ω
DIGITAL INPUTS (CS, SDI, SCK in Serial or Parallel Programming Mode. SDO in Parallel Programming Mode)
SDO OUTPUT (Serial Programming Mode. Open-Drain Output. Requires 2k Pull-Up Resistor if SDO is Used)
DIGITAL DATA OUTPUTS
POWER REQUIREMENTS
The
l
denotes the specifications which apply over the full operating temperature
range, otherwise specifications are at T
A
= 25°C. (Note 9)
PARAMETER
Analog Supply Voltage
Output Supply Voltage
Analog Supply Current
Digital Supply Current
CONDITIONS
(Note 10)
(Note 10)
Sine Wave Input
2-Lane Mode, 1.75mA Mode
2-Lane Mode, 3.5mA Mode
4-Lane Mode, 1.75mA Mode
4-Lane Mode, 3.5mA Mode
2-Lane Mode, 1.75mA Mode
2-Lane Mode, 3.5mA Mode
4-Lane Mode, 1.75mA Mode
4-Lane Mode, 3.5mA Mode
l
l
l
l
l
l
l
l
l
l
l
SYMBOL
V
DD
OV
DD
I
VDD
I
OVDD
LTC2195
MIN
TYP MAX
1.7
1.7
1.8
1.8
224
16
27
23
42
432
452
445
479
1
50
20
1.9
1.9
248
20
32
27
49
482
504
495
535
LTC2194
MIN
TYP MAX
1.7
1.7
1.8
1.8
185
15
27
23
42
360
382
375
409
1
50
20
1.9
1.9
205
19
32
27
49
403
427
418
457
LTC2193
MIN
TYP MAX
1.7
1.7
1.8
1.8
123
15
26
22
41
249
269
261
295
1
50
20
1.9
1.9
138
19
31
26
48
283
304
295
335
UNITS
V
V
mA
mA
mA
mA
mA
mW
mW
mW
mW
mW
mW
mW
P
DISS
Power Dissipation
P
SLEEP
P
NAP
P
DIFFCLK
Sleep Mode Power
Nap Mode Power
Power Increase with Diffential Encode Mode Enabled
Friends who have project needs in this area are welcome to contact us, we are very mature.Servo low speed running current waveformCurrent waveform of sine wave driver without Hall effect (high speed)C...
[i=s]This post was last edited by ddllxxrr on 2020-10-6 19:26[/i]I have a 1.3-inch SPI screen. If there is a routine, I put the OLED.c and font library in the routine as a subdirectory. All of them ar...
[i=s]This post was last edited by a student of media at 2019-5-12 16:54[/i] [align=center][md]#[color=#9932cc]【RT-Thread Reading Notes】RT-Thread Reading Notes Overall Summary[/color]#[/md][/align] [md...
After Huawei suffered the second round of sanctions from the United States, its self-developed chip supply chain was directly cut off. TSMC has confirmed that it will no longer supply chips to Huawei ...
[i=s]This post was last edited by jameswangsynnex on 2015-3-3 19:57[/i] At 9 am today, the much-watched "IPAD" trademark dispute case will be heard in the First Court of the Guangdong Provincial High ...
1. Several nouns
ABI:
The specifications that an executable file must follow in order to run in a specific execution environment;
Separately generated relocatabl...[Details]
Whether it is an electric car or an ordinary fuel car, for the vast majority of car buyers, the final cost of use is what they care about most. For fuel cars, how to save fuel is what drivers care ...[Details]
As the main model among new energy vehicles, pure electric vehicles have received strong support and encouragement from the country in recent years, and their development is changing with each pass...[Details]
New energy pure electric vehicles generally accelerate faster than comparable fuel-powered vehicles, both from a standing start and while accelerating. Many believe this is simply due to the motor'...[Details]
Recently,
Xpeng Motors and Xinlian Integrated Circuit jointly announced the mass production of China's first hybrid silicon carbide product.
Designed and developed by Xpeng Motors and joint...[Details]
Amidst the wave of intelligent automotive transformation, advanced driver assistance is gradually emerging from cutting-edge technology into the mainstream, becoming a new frontier of industry comp...[Details]
Keysight Technologies is combining its electromagnetic simulator with Synopsys' AI-driven RF design migration flow to create an integrated design flow for migrating from TSMC's N6RF+ process techno...[Details]
Charging is a familiar process for new energy vehicles, and as a source of battery energy, charging piles are crucial. New energy vehicle charging can be divided into fast charging and slow chargin...[Details]
Electric vehicles are powered by electricity, and charging is a device that supplements the vehicle's energy source. It is common to need to recharge the vehicle when driving. But can you charge th...[Details]
1. Multi-channel DAC technology bottleneck
Currently,
the development of multi-channel DAC technology focuses on two core challenges.
First, industrial applications urgently ...[Details]
With the continuous development of the industrial automation industry, we are seeing an increasing number of intelligent devices using flexible, efficient, and precise robotic arms to p...[Details]
The 2025 China International Automotive Testing Exhibition will be held at the Shanghai World Expo Exhibition and Convention Center from August 27 to 29, 2025.
Clacton Seafront, UK, ...[Details]
Plessey Semiconductors has been acquired by Haylo Labs, which was established in March last year with a $100 million, five-year loan from Chinese technology company Goertek.
Haylo Labs w...[Details]
During daily operation of an R-type power transformer, the voltage used varies as the equipment being used adjusts. This raises the question: can the transformer change voltage at this point? The a...[Details]
To improve the lateral active safety of intelligent connected vehicles, the identification and definition of unexpected functional safety scenarios for the EPS (Electronic Steering System) ...[Details]