AD8139ACP-R2 Analog Devices Inc, AD8139ACP-R2 Datasheet

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AD8139ACP-R2

Manufacturer Part Number
AD8139ACP-R2
Description
IC AMP DIFF R-R LN LDIST 8LFCSP
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD8139ACP-R2

Amplifier Type
Differential
Number Of Circuits
1
Output Type
Differential, Rail-to-Rail
Slew Rate
800 V/µs
-3db Bandwidth
410MHz
Current - Input Bias
2.25µA
Voltage - Input Offset
150µV
Current - Supply
24.5mA
Current - Output / Channel
100mA
Voltage - Supply, Single/dual (±)
4.5 V ~ 12 V, ±2.25 V ~ 6 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
8-LFCSP
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Gain Bandwidth Product
-
FEATURES
Fully differential
Low noise
Low harmonic distortion
High speed
69 dB output balance @ 1 MHz
80 dB dc CMRR
Low offset: ±0.5 mV maximum
Low input offset current: 0.5 μA maximum
Differential input and output
Differential-to-differential or single-ended-to-differential
Rail-to-rail output
Adjustable output common-mode voltage
Wide supply voltage range: 5 V to 12 V
Available in a small SOIC package and an 8-lead LFCSP
GENERAL DESCRIPTION
The AD8139 is an ultralow noise, high performance differential
amplifier with rail-to-rail output. With its low noise, high
SFDR, and wide bandwidth, it is an ideal choice for driving
ADCs with resolutions to 18 bits. The AD8139 is easy to apply,
and its internal common-mode feedback architecture allows its
output common-mode voltage to be controlled by the voltage
applied to one pin. The internal feedback loop also provides
outstanding output balance as well as suppression of even-order
harmonic distortion products. Fully differential and single-
ended-to-differential gain configurations are easily realized by
the AD8139. Simple external feedback networks consisting of
four resistors determine the closed-loop gain of the amplifier.
The AD8139 is manufactured on the Analog Devices, Inc.
proprietary, second-generation XFCB process, enabling it to
achieve low levels of distortion with input voltage noise of only
2.25 nV/√Hz.
Rev. B
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.
2.25 nV/√Hz
2.1 pA/√Hz
98 dBc SFDR @ 1 MHz
85 dBc SFDR @ 5 MHz
72 dBc SFDR @ 20 MHz
410 MHz, 3 dB BW (G = 1)
800 V/μs slew rate
45 ns settling time to 0.01%
operation
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781.329.4700
Fax: 781.461.3113
APPLICATIONS
ADC drivers to 18 bits
Single-ended-to-differential converters
Differential filters
Level shifters
Differential PCB drivers
Differential cable drivers
The AD8139 is available in an 8-lead SOIC package with an
exposed paddle (EP) on the underside of its body and a 3 mm ×
3 mm LFCSP. It is rated to operate over the temperature range
of −40°C to +125°C.
100
10
1
10
FUNCTIONAL BLOCK DIAGRAMS
100
Low Noise, Rail-to-Rail,
Figure 3. Input Voltage Noise vs. Frequency
Differential ADC Driver
+OUT
+OUT
V
V
OCM
OCM
–IN
–IN
V+
V+
1k
Figure 2. 8-Lead LFCSP
1
2
3
4
Figure 1. 8-Lead SOIC
1
2
3
4
NC = NO CONNECT
©2007 Analog Devices, Inc. All rights reserved.
NC = NO CONNECT
10k
FREQUENCY (Hz)
(Not to Scale)
AD8139
AD8139
TOP VIEW
100k
8
7
6
5
1M
+IN
NC
V–
–OUT
8 +IN
7 NC
6 V–
5 –OUT
10M
AD8139
www.analog.com
100M
1G

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AD8139ACP-R2 Summary of contents

Page 1

FEATURES Fully differential Low noise 2.25 nV/√Hz 2.1 pA/√Hz Low harmonic distortion 98 dBc SFDR @ 1 MHz 85 dBc SFDR @ 5 MHz 72 dBc SFDR @ 20 MHz High speed 410 MHz ...

Page 2

AD8139 TABLE OF CONTENTS Features .............................................................................................. 1 Applications....................................................................................... 1 Functional Block Diagrams............................................................. 1 General Description ......................................................................... 1 Revision History ............................................................................... 2 Specifications..................................................................................... ± .................................................................. 3 S OCM ...

Page 3

SPECIFICATIONS V = ± OCM T = 25°C, differential gain = kΩ Table 1. Parameter DIFFERENTIAL INPUT PERFORMANCE Dynamic Performance −3 dB Small Signal Bandwidth −3 ...

Page 4

AD8139 Parameter POWER SUPPLY Operating Range Quiescent Current +PSRR −PSRR OPERATING TEMPERATURE RANGE Conditions Change ± Change in −V = ± Rev Page Min Typ Max Unit +4.5 ...

Page 5

2 OCM T = 25°C, differential gain = kΩ Table 2. Parameter DIFFERENTIAL INPUT PERFORMANCE Dynamic Performance −3 dB Small Signal Bandwidth −3 dB ...

Page 6

AD8139 Parameter POWER SUPPLY Operating Range Quiescent Current +PSRR −PSRR OPERATING TEMPERATURE RANGE Conditions Change ± Change in −V = ± Rev Page Min Typ Max Unit +4.5 ...

Page 7

ABSOLUTE MAXIMUM RATINGS Table 3. Parameter Supply Voltage V OCM Power Dissipation Input Common-Mode Voltage Storage Temperature Range Operating Temperature Range Lead Temperature (Soldering 10 sec) Junction Temperature Stresses above those listed under Absolute Maximum Ratings may cause permanent damage ...

Page 8

AD8139 PIN CONFIGURATIONS AND FUNCTION DESCRIPTIONS AD8139 – OCM +OUT CONNECT Figure 5. 8-Lead SOIC Pin Configuration Table 5. Pin Function Descriptions Pin No. Mnemonic Description 1 ...

Page 9

TYPICAL PERFORMANCE CHARACTERISTICS Unless otherwise noted, differential gain = +1, R circuit in Figure 57 for the definition of terms –1 –2 –3 –4 –5 –6 – –8 –9 –10 – 200Ω ...

Page 10

AD8139 200Ω –1 –2 –3 –4 –5 –6 –7 –8 –9 –10 – 0.1V p –12 10 100 FREQUENCY (MHz) Figure 13. Small Signal Frequency Response for Various Loads ...

Page 11

V = 2.0V p –40 –50 – ±5V S –70 –80 –90 –100 –110 –120 –130 0 FREQUENCY (MHz) Figure 19. Second Harmonic Distortion vs. Frequency and Supply Voltage – 2.0V ...

Page 12

AD8139 – 2.0V p –40 –50 –60 – 200Ω F – 500Ω F –90 –100 –110 R = 1kΩ F –120 –130 0.1 1 FREQUENCY (MHz) Figure 25. Second Harmonic Distortion vs. ...

Page 13

V = 100mV p 0pF 0pF 2pF ±5V ±5V –25 –50 –75 –100 TIME (ns) ...

Page 14

AD8139 1.5 ±5V 1.0 +5V 0.5 0 –0 p IN, dm –1.0 –1.5 TIME (ns) Figure 37. V Large Signal Transient Response OCM 0.2V p-p IN, cm INPUT CMRR ...

Page 15

R = 1kΩ PSRR = ΔV /Δ –10 –20 –30 –40 –PSRR –50 +PSRR –60 –70 –80 –90 –100 1 10 100 FREQUENCY (MHz) Figure 43. PSRR vs. Frequency 100 ...

Page 16

AD8139 3 2.5 I BIAS 2.0 1.5 1.0 –40 – TEMPERATURE (°C) Figure 49. Input Bias and Offset Current vs. Temperature ± –2 –4 –6 ...

Page 17

TEMPERATURE (°C) Figure 55. V Bias Current vs. Temperature OCM TEST CIRCUITS V TEST SIGNAL SOURCE V TEST TEST SIGNAL SOURCE 80 100 ...

Page 18

AD8139 THEORY OF OPERATION The AD8139 is a high speed, low noise differential amplifier fabricated on the Analog Devices second-generation eXtra Fast Complementary Bipolar (XFCB) process designed to provide two closely balanced differential outputs in response to either ...

Page 19

APPLICATIONS ESTIMATING NOISE, GAIN, AND BANDWIDTH WITH MATCHED FEEDBACK NETWORKS Estimating Output Noise Voltage The total output noise is calculated as the root-sum-squared total of several statistically independent sources. Because the sources are statistically independent, the contributions of each must ...

Page 20

AD8139 For proper operation, the voltages within their respective linear ranges. Calculating Input Impedance The input impedance of the circuit in Figure 59 depends on whether the amplifier is being driven by a single-ended or a differential ...

Page 21

One way to avoid the input common-mode swing limitation is to bias V and V at midsupply. In this case REF swinging about a baseline at 2.5 V, and V low-Z 2.5 V source. V now has an ...

Page 22

AD8139 Driving a Capacitive Load A purely capacitive load reacts with the bondwire and pin inductance of the AD8139, resulting in high frequency ringing in the transient response and loss of phase margin. One way to minimize this effect is ...

Page 23

Because this is a single-ended-to-differential application on a single supply, the input common-mode voltage swing must be checked. From Figure 64, β = 0.52, V OCM 1.1 V p-p swinging about ground. Using Equation 16, V calculated to be 0.53 ...

Page 24

... AD8139ARD-REEL7 –40°C to +125°C 1 AD8139ARDZ –40°C to +125°C 1 AD8139ARDZ-REEL –40°C to +125°C 1 AD8139ARDZ-REEL7 –40°C to +125°C AD8139ACP-R2 –40°C to +125°C AD8139ACP-REEL –40°C to +125°C AD8139ACP-REEL7 –40°C to +125°C 1 AD8139ACPZ-R2 –40°C to +125°C 1 AD8139ACPZ-REEL – ...

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