ADA4927-1YCPZ-R7 Analog Devices Inc, ADA4927-1YCPZ-R7 Datasheet

UltraLw Distortion Crnt Fdbck ADC Driver

ADA4927-1YCPZ-R7

Manufacturer Part Number
ADA4927-1YCPZ-R7
Description
UltraLw Distortion Crnt Fdbck ADC Driver
Manufacturer
Analog Devices Inc
Datasheet

Specifications of ADA4927-1YCPZ-R7

Amplifier Type
Current Feedback
Number Of Circuits
1
Output Type
Differential
Slew Rate
5000 V/µs
-3db Bandwidth
2.3GHz
Current - Input Bias
500nA
Voltage - Input Offset
300µV
Current - Supply
20mA
Current - Output / Channel
65mA
Voltage - Supply, Single/dual (±)
4.5 V ~ 11 V, ±2.25 V ~ 5.5 V
Operating Temperature
-40°C ~ 105°C
Mounting Type
Surface Mount
Package / Case
16-LFCSP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Gain Bandwidth Product
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
ADA4927-1YCPZ-R7TR

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
ADA4927-1YCPZ-R7
Manufacturer:
Cortina
Quantity:
5
FEATURES
Extremely low harmonic distortion
Better distortion at higher gains than VF amplifiers
Low input voltage noise: 1.4 nV/√Hz
High speed
Low input offset voltage: 0.3 mV typical
Externally adjustable gain
Stability and bandwidth controlled by feedback resistor
Differential-to-differential or single-ended-to-differential
Adjustable output common-mode voltage
Wide supply operation: +5 V to ±5 V
APPLICATIONS
ADC drivers
Single-ended-to-differential converters
IF and baseband gain blocks
Differential buffers
Differential line drivers
GENERAL DESCRIPTION
The ADA4927 is a low noise, ultralow distortion, high speed,
current feedback differential amplifier that is an ideal choice for
driving high performance ADCs with resolutions up to 16 bits
from dc to 100 MHz. The output common-mode level can easily be
matched to the required ADC input common-mode levels. The
internal common-mode feedback loop provides exceptional output
balance and suppression of even-order distortion products.
Differential gain configurations are easily realized using an
external feedback network comprising four resistors. The
current feedback architecture provides loop gain that is nearly
independent of closed-loop gain, achieving wide bandwidth,
low distortion, and low noise at higher gains and lower power
consumption than comparable voltage feedback amplifiers.
The ADA4927 is fabricated using the Analog Devices, Inc., silicon-
germanium complementary bipolar process, enabling very low
levels of distortion with an input voltage noise of only 1.3 nV/√Hz.
Rev. A
Information furnished by Analog Devices is believed to be accurate and reliable. However, no
responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other
rights of third parties that may result from its use. Specifications subject to change without notice. No
license is granted by implication or otherwise under any patent or patent rights of Analog Devices.
Trademarks and registered trademarks are the property of their respective owners.
−105 dBc HD2 @ 10 MHz
−91 dBc HD2 @ 70 MHz
−87 dBc HD2 @ 100 MHz
−103 dBc HD3 @ 10 MHz
−98 dBc HD3 @ 70 MHz
−89 dBc HD3 @ 100 MHz
−3 dB bandwidth of 2.3 GHz
0.1 dB gain flatness: 150 MHz
Slew rate: 5000 V/μs, 25% to 75%
Fast 0.1% settling time: 10 ns
operation
Current Feedback Differential ADC Driver
One Technology
Tel: 781.329.4700
Fax: 781.461.3113
The low dc offset and excellent dynamic performance of the
ADA4927 make it well suited for a wide variety of data acquisition
and signal processing applications.
The ADA4927-1 is available in a Pb-free, 3 mm × 3 mm 16-lead
LFCSP, and the ADA4927-2 is available in a Pb-free, 4 mm × 4 mm
24-lead LFCSP. The pinouts are optimized to facilitate printed
circuit board (PCB) layout and to minimize distortion. They are
specified to operate over the −40°C to +105°C temperature range.
Figure 3. Spurious-Free Dynamic Range vs. Frequency at Various Gains
–100
–110
–120
–130
–40
–50
–60
–70
–80
–90
1
FUNCTIONAL BLOCK DIAGRAMS
V
OUT
ADA4927-1/ADA4927-2
Way, P.O. Box 9106, Norwood, MA 020
+FB1
,
–FB2
+V
+V
–IN1
+IN2
dm
–FB
+FB
+IN
–IN
S1
S1
©2008-2009 Analog Devices, Inc. Al
= 2V p-p
1
2
3
4
5
6
1
2
3
4
Ultralow Distortion
ADA4927-1
ADA4927-2
10
FREQUENCY (MHz)
Figure 1.
Figure 2.
12 PD
11 –OUT
10 +OUT
9 V
18 +OUT1
17 V
16 –V
15 –V
14 PD2
13 –OUT2
100
OCM
OCM1
S2
S2
www.analog.com
l rights reserved.
G = 1
G = 10
G = 20
62-9106, U.S.A.
1k

Related parts for ADA4927-1YCPZ-R7

ADA4927-1YCPZ-R7 Summary of contents

Page 1

... ADA4927 make it well suited for a wide variety of data acquisition and signal processing applications. The ADA4927-1 is available in a Pb-free × 16-lead LFCSP, and the ADA4927-2 is available in a Pb-free × 24-lead LFCSP. The pinouts are optimized to facilitate printed circuit board (PCB) layout and to minimize distortion. They are specified to operate over the − ...

Page 2

... ADA4927-1/ADA4927-2 TABLE OF CONTENTS Features .............................................................................................. 1 Applications ....................................................................................... 1 General Description ......................................................................... 1 Functional Block Diagrams ............................................................. 1 Revision History ............................................................................... 2 Specifications ..................................................................................... 3 ±5 V Operation ............................................................................. Operation ............................................................................. 5 Absolute Maximum Ratings ............................................................ 7 Thermal Resistance ...................................................................... 7 Maximum Power Dissipation ..................................................... 7 ESD Caution .................................................................................. 7 Pin Configurations and Function Descriptions ........................... 8 Typical Performance Characteristics ............................................. 9 Test Circuits ..................................................................................... 15 Theory of Operation ...................................................................... 16 REVISION HISTORY 8/09—Rev Rev. A Changes to Ordering Guide .......................................................... 24 10/08— ...

Page 3

... OUT p-p, 10 MHz OUT p-p, 70 MHz OUT p-p, 100 MHz OUT MHz 70.1 MHz OUT 140 MHz 140.1 MHz OUT 100 kHz 100 kHz 100 MHz, ADA4927 OCM variation MIN MAX variation MIN MAX Differential Common mode Differential ∆V /∆V , ∆V = ± ...

Page 4

... ADA4927-1/ADA4927 Performance OCM OUT, cm Table 2. Parameter V DYNAMIC PERFORMANCE OCM Small Signal −3 dB Bandwidth Slew Rate Input Voltage Noise (RTI) V INPUT CHARACTERISTICS OCM Input Voltage Range Input Resistance Input Offset Voltage V CMRR OCM Gain General Performance Table 3. Parameter POWER SUPPLY Operating Range ...

Page 5

... V p-p, 10 MHz OUT p-p, 70 MHz OUT p-p, 100 MHz OUT MHz 70.1 MHz p OUT 140 MHz 140.1 MHz p OUT 100 kHz 100 kHz 100 MHz, ADA4927 OCM variation MIN MAX variation MIN MAX Differential Common mode Differential ∆V /∆V , ∆V = ± ...

Page 6

... ADA4927-1/ADA4927 Performance OCM OUT, cm Table 5. Parameter V DYNAMIC PERFORMANCE OCM Small signal −3 dB Bandwidth Slew Rate Input Voltage Noise (RTI) V INPUT CHARACTERISTICS OCM Input Voltage Range Input Resistance Input Offset Voltage V CMRR OCM Gain General Performance Table 6. Parameter POWER SUPPLY Operating Range ...

Page 7

... LFCSP (Exposed Pad) 24-Lead LFCSP (Exposed Pad) MAXIMUM POWER DISSIPATION The maximum safe power dissipation in the ADA4927 package is limited by the associated rise in junction temperature (T the die. At approximately 150°C, which is the glass transition temperature, the plastic changes its properties. Even temporarily ...

Page 8

... Positive Output for Load Connection 11 −OUT Negative Output for Load Connection 12 Power-Down Pin −V Negative Supply Voltage S 17 (EPAD) Exposed Connect the exposed pad to any Pad (EPAD) plane between and including +V and − Table 10. ADA4927-2 Pin Function Descriptions Pin No 15 21, 22 ...

Page 9

... Figure 9. Small Signal Frequency Response for Various Temperatures = 301 Ω 301 Ω 56.2 Ω (when used 10k 1k 10k 1k 10k Figure 12. Large Signal Frequency Response for Various Temperatures Rev Page ADA4927-1/ADA4927 kΩ, unless otherwise noted p-p OUT dm 0 –3 – 301Ω – 10 442Ω 20 604Ω ...

Page 10

... ADA4927-1/ADA4927 100mV p-p OUT dm 0 –3 – 200Ω L – 1kΩ L – 100 FREQUENCY (MHz) Figure 13. Small Signal Frequency Response for Various Loads 100mV p-p OUT dm 0 –3 – –4V OCM V = –3.5V OCM –9 OCM V = +3.5V OCM V = +4V OCM – 100 FREQUENCY (MHz) Figure 14 ...

Page 11

... Figure 23. Harmonic Distortion vs. V –40 –50 –60 –70 –80 –90 –100 HD2, 10MHz –110 HD3, 10MHz –120 –4 0.6 0.8 1.0 1.2 Figure 24. Harmonic Distortion vs. V Rev Page ADA4927-1/ADA4927 p-p OUT dm HD2 HD3 HD2 HD3 HD2 HD3 100 FREQUENCY (MHz p-p OUT dm ...

Page 12

... Figure 28. 70 MHz Intermodulation Distortion – 40 INPUT AMP2 TO OUTPUT AMP1 –50 INPUT AMP1 TO OUTPUT AMP2 –60 –70 –80 –90 –100 –110 –120 –130 –140 0 100 FREQUENCY (MHz) Figure 29. Crosstalk vs. Frequency for ADA4927-2 – 200Ω –30 –40 –50 –60 – ±5V, –PSRR S – ±5V, +PSRR S – ...

Page 13

... Figure 34. Open-Loop Transimpedance Magnitude and Phase vs. Frequency –5 –10 1k 0.1 Figure 35. Closed-Loop Output Impedance Magnitude vs. Frequency –5 – 10M 100M Rev Page ADA4927-1/ADA4927-2 MAGNITUDE PHASE 1k 10k 100k 1M 10M 100M 1G 10G FREQUENCY (Hz ± ± ±2. ±2. 100 FREQUENCY (MHz) ...

Page 14

... ADA4927-1/ADA4927 –10 –20 –30 –40 –50 – TIME (ns) Figure 37. Small Signal Pulse Response –10 –20 –30 –40 –50 – TIME (ns) Figure 38. V Small Signal Pulse Response OCM 1.2 1.0 0.8 0.6 0.4 0.2 0 –0.2 –0.4 –0.6 INPUT –0.8 –1.0 –1.2 –10 ...

Page 15

... FILTER 56.2Ω V ADA4927 OCM 0.1µF 301Ω 25.5Ω 0.1µF –5V 301Ω Figure 45. Test Circuit for Distortion Measurements Rev Page ADA4927-1/ADA4927-2 1kΩ DIFFERENTIAL NETWORK ANALYZER INPUT 50Ω DIFFERENTIAL NETWORK ANALYZER INPUT 50Ω 200Ω 50Ω 442Ω ...

Page 16

... Moreover, the ADA4927 OCM uses a current feedback architecture. Like a traditional current feedback op amp, the ADA4927 relies on high open-loop trans- impedance, T(s), and negative current feedback to force the outputs to the desired voltages. The ADA4927 behaves much like a standard current feedback op amp and facilitates single- ended-to-differential conversions, common-mode level shifting, and amplifications of differential signals ...

Page 17

... F1 nRF1 Feedback Resistor nRF2 ESTIMATING THE OUTPUT NOISE VOLTAGE The differential output noise of the ADA4927 can be estimated using the noise model in Figure 47. The input-referred noise voltage density, v noise currents, i ground. The output voltage due the noise gain, G nIN noise currents are uncorrelated with the same mean-square value, and each produces an output voltage that is equal to the noise current multiplied by the associated feedback resistance ...

Page 18

... For balanced differential input signals, as shown in Figure 48, the input impedance (R (+D IN input (including OCM Figure 48. The ADA4927 Configured for Balanced (Differential) Inputs input OCM Rev Page Differential Output Noise Density (nV/√Hz) 8.1 18.6 29 ...

Page 19

... R G Terminating a Single-Ended Input This section deals with how to properly terminate a single- ended input to the ADA4927 with a gain 348 Ω. An example using an input source with a terminated G output voltage p-p and a source resistance of 50 Ω illustrates the four simple steps that must be followed ...

Page 20

... R TS 26.7Ω – 357Ω . This ac coupling blocks the flow of the dc common- G pin of the ADA4927 is internally biased with a voltage OCM ) + (− pin sources and sinks current, depending OCM input is driven by a low impedance voltage source. OCM input to a common-mode OCM pin is approximately 10 kΩ ...

Page 21

... The ADA4927 is generally enabled by pulling the power-down pin to the positive supply. See the Specifications tables for the specific voltages required to assert and deassert the power- down feature ...

Page 22

... ADA4927-1/ADA4927-2 LAYOUT, GROUNDING, AND BYPASSING As a high speed device, the ADA4927 is sensitive to the PCB environment in which it operates. Realizing its superior performance requires attention to the details of high speed PCB design. This section shows a detailed example of how the ADA4927-1 was addressed. The first requirement is a solid ground plane that covers as much of the board area around the ADA4927-1 as possible ...

Page 23

... SIGNAL GENERATOR 0.1µF Figure 58. ADA4927 Driving an AD9445 ADC with AC-Coupled Input and Output In this example, the signal generator has p-p symmetric, ground-referenced bipolar output when terminated in 50 Ω. The V and left floating such that the internal divider sets the output common-mode voltage nominally at midsupply ...

Page 24

... SEATING PLANE ORDERING GUIDE Model Temperature Range 1 ADA4927-1YCPZ-R2 −40°C to +105°C 1 ADA4927-1YCPZ-RL −40°C to +105°C 1 ADA4927-1YCPZ-R7 −40°C to +105°C 1 ADA4927-2YCPZ-R2 −40°C to +105°C 1 ADA4927-2YCPZ-RL −40°C to +105°C 1 ADA4927-2YCPZ-R7 −40°C to +105° RoHS Compliant Part. ...

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