The EL5193C is a current feedback amplifier with a bandwidth of
300MHz. This makes these amplifiers ideal for today’s high speed
video and monitor applications.
With a supply current of just 4mA and the ability to run from a single
supply voltage from 5V to 10V, these amplifiers are also ideal for
hand held, portab le or battery-power ed equipment.
For applications where board space is critical, the EL5193C is offered
in the 5-pin SOT23 package, as well as an industry standard 8-pin SO.
The EL5193C operates over the industrial temperature range of -40°C
to +85°C.
Pin Configurations
OUT
VS-
IN+
1
2
3
5-Pin SOT23
+
-
EL5193CW
5
4
IN-
IN+
IN-
VS-
NC
VS+
1
2
3
4
SO8
-
+
EL5193CS
NC*
8
VS+
7
OUT
6
NC
5
* This pin must be left disconnected
Note: All information contained in this data sheet has been carefully checked and is believed to be accurate as of the date of publication; however, this data sheet cannot be a “controlled document”. Current revisions, if any, to these
specifications are maintained at the factory and are available upon your request . W e recommend checking the revision level befo re finalization of your design documentation.
Values beyond absolute maximum ratings can cause the device to be prematurely damaged. Absolute maximum ratings are stress ratings only and
functional device operation is not implied.
Supply Voltage between V
Maximum Continuous Output Current50mA
+ and VS-11V
S
= 25°C)
A
Operating Junction Temperature125°C
Power DissipationSee Curves
Pin VoltagesV
- - 0.5V to VS+ +0.5V
S
Storage Temperature-65°C to +150°C
Operating Temperature-40°C to +85°C
Important Note:
All parameters having Min/Max specifications are guaranteed. Typ values are for information purposes only. Unless otherwise noted, all tests are at the
specified temperature and are pulsed tests, therefore: T
= TC = TA.
J
Electrical Characteristics
VS+ = +5V, VS- = -5V, RF = 750Ω for AV = 1, RF = 400Ω for AV = 2, RL = 150Ω, TA = 25°C unless otherwise specified.
ParameterDescriptionConditionsMinTypMaxUnit
AC Performance
BW-3dB BandwidthA
BW10.1dB Bandwidth20MHz
SRSlew RateV
ts0.1% Settling TimeV
e
n
i
-IN- input current noise17pA/√Hz
n
i
+IN+ input current noise50pA/√Hz
n
dGDifferential Gain Error
dPDifferential Phase Error
Input Voltage Noise4.4nV/√Hz
[1]
[1]
DC Performance
V
T
R
OS
CVOS
OL
Offset Voltage-10110mV
Input Offset Voltage Temperature CoefficientMeasured from T
Transimpedance300500kΩ
75V
8NCNot connected (leave this pin disconnected)
-Negative supply
S
+Positive supply
S
Circuit1
VS-
VS+
OUT
VS-
Circuit 2
11
Page 12
EL5193C
Single 300MHz Current Feedback Amplifier
EL5193C
Applications Information
Product Description
The EL5193C is a current-feedback operational amplifier that offers a wide -3dB bandwidth of 300MHz and a
low supply current of 4mA per amplifier. The EL5193C
works with supply voltages ranging from a single 5V to
10V and they are also capabl e of swi ngi ng t o wi thin 1 V
of either supply on the output. Because of their currentfeedback topolo gy , t he EL 5 19 3C do es not hav e t he nor mal gain-bandwidth product associated with voltagefeedback operational amp lifiers. Instead, its -3dB bandwidth to remain relatively c onstant as c losed-loop gain is
increased. This combination of high bandwidth and low
power, together with aggressive pricing make the
EL5193C the ideal choice for many low-power/highbandwidth applications such as portable, handheld, or
battery-powered equipment.
For varying bandwidth needs, con sider the EL5191C
with 1GHz on a 9mA supply current or the EL5192C
with 600MHz on a 6mA supply current. Versions
include single, dua l, a nd tri ple amp pa cka ges w ith 5-p in
SOT23, 16-pin QSOP, and 8-pin or 16-pin SO out li nes.
Power Supply Bypassing and Printed Circuit
Board Layout
As with any hig h fr e que ncy d evi ce , good pr in te d c irc uit
board layout is necessary for optimum performance.
Low impedance ground plane construction is essential.
Surface mount components are recommended, but if
leaded components are used, lead lengths should be as
short as possible. The power supply pi ns must be well
bypassed to reduce the risk of os cilla tion. The co mbin ation of a 4.7µF tantalum capacitor in parallel with a
0.01µ F capacitor has been shown to work well when
placed at each supply pin.
For good AC performance, parasitic capacitan ce should
be kept to a minimum, especially at the inverting input.
(See the Capacitance at the Inverting Input section) Even
when ground plane construction i s used, it should be
removed from the area near the inverting input to minimize any stray capacitance at that node. Carbon or
Metal-Film resistors are acceptable with the Metal-Film
resistors giving slightly less peaking and bandwidth
because of additional series inductance. Use of sockets,
particularly for the SO package, should be avoided if
possible. Sockets add parasitic ind uctance and c apacitance which will result in additional peaking and
overshoot.
Capacitance at the Inverting Input
Any manufacturer’s high-speed voltage- or currentfeedback amplifier can b e affected by stra y capacitan ce
at the inverting input. For inverting gains, this parasitic
capacitance has little e ffect because t he inverting i nput is
a virtual ground, but for non- inve rtin g gain s, this ca pacitance (in conjunction with the feedback and gain
resistors) creates a pole in the feedback path of the
amplifier. This pole, if low enough in frequency, has the
same destabilizing effect as a ze ro in the forward openloop response. The use of large-value feedback and gain
resistors exacerbates the problem by further lowering
the pole frequency (increasing the possibility of
oscillation.)
The EL5193C has been optimized with a 475Ω feedback
resistor. With the high bandwidth of these amplifiers,
these resistor values might cause stability problems
when combined with parasitic capacitance, thus ground
plane is not recommende d aroun d the inv erting in put pi n
of the amplifier.
Feedback Resistor Values
The EL5193C has been des ig ned and spec ifi ed at a gai n
of +2 with R
back resistor gives 200MHz of -3dB bandwidth at A
with 2dB of peaking. With A
mately 500Ω gives 1 75MH z of ban dwid th w ith 0. 2dB of
peaking. Since the EL5193C is a current-feedback
amplifier, it is also possible to change the value of R
get more bandwidt h. As seen in the curv e of Freque ncy
Response for Various RF and RG, bandwidth and peaking can be easily modif ied by vary ing the value of the
feedback resistor.
Because the EL5193C is a current-feedback amplifier,
its gain-bandwidth product is not a constant for different
closed-loop gains. This feature actually allows the
EL5193C to maintain about the same -3dB bandwidth.
As gain is increased, bandwidth decreases slightly while
approximately 500Ω. This value of feed-
F
=-2, an RF of approxi-
V
=2
V
to
F
12
Page 13
EL5193C
Single 300M Hz Current F eedback Amplifier
EL5193C
stability increases. Since the loop stability is improving
with higher closed-loop gains, it becomes possible to
reduce the value of R
still retain stability, resulting in only a slight loss of
bandwidth with inc reased closed-loop gain.
below the specified 475Ω and
F
Supply Voltage Range and Single-Supply
Operation
The EL5193C has been designed to operate with supply
voltages having a span of greater than 5V and less than
10V. In practical terms, this means that the EL5193C
will operate on dual supplies ranging from ±2.5V to
±5V. With single-supply, the EL5193C will operate
from 5V to 10V.
As supply voltages continue to decrease, it becomes necessary to provide input and output voltage ranges that
can get as close as possible to the supply voltages. The
EL5193C has an input ran ge which e xtends to with in 2V
of either supply. So, for example, on +5V supplies, the
EL5193C has an input ran ge wh ic h span s ±3V. The output range of the EL5193C is also quite large, extending
to within 1V of the supply rail. On a ±5V supply, the
output is therefore capable of swinging from -----4V to
+4V. Single-sup ply output range is larger because of the
increased negative swing due to the external pull-down
resistor t o gr o u n d.
Video Performance
For good video performance, an amplifier is required to
maintain the same output impedance and the same frequency response as DC level s are changed at the output.
This is especially difficult when driving a standard vid eo
load of 150Ω, because of the change in output current
with DC level. Previously, good differential gain could
only be achieved by running high idle currents through
the output transistors (to reduce variations in output
impedance.) These currents were typically comparable
to the entire 4mA supply current of each EL5193C
amplifier. Special circuitry has been incorporated in the
EL5193C to reduce the variation of output impedance
with current output. This results in dG and dP specifications of 0.03% and 0.04°, while driving 150Ω at a gain
of 2.
Video performance has also been measured with a 500Ω
load at a gain of +1. Under these conditions, the
EL5193C has dG and dP specifications of 0.03% and
0.04°.
Output Drive Capability
In spite of its low 4mA of supply current, the EL5193C
is capable of providin g a minimu m of ±95mA of ou tput
current. With a minimum of ±95mA of output drive, the
EL5193C is capable of driving 50Ω loads to both rails,
making it an excellent choice for driving isolation transformers in telecommunications applications.
Driving Cables and Capacitive Loads
When used as a cable driver, double termination is
always recommended for reflection-free perfo rmance.
For those applications, the back-term ina tion series re sistor will decouple the EL5193C from the c ab le an d allo w
extensive capacitive drive. However, other applications
may have high capaci tiv e loa ds wit hout a b ack -te rmination resistor. In these applications, a small series resist or
(usually between 5Ω and 50Ω) can be placed in series
with the output to eliminate most peaking. The gain
resistor (R
loss which may be created by this additional resistor at
the output. In many cases it is also possible to simply
increase the value of the feedback resistor (R
the peaking.
) can then be c hosen to make up for any ga in
G
) to reduce
F
Current Limiting
The EL5193C has no internal current-limiting circuitry.
If the output is shorted, it is possible to ex ceed the Abso lute Maximum Rating for o utput current or power
dissipation, potentially resultin g in the d estr uctio n o f th e
device.
Power Dissipation
With the high output drive ca p ability of the EL5193C, it
is possible to exceed the 125°C Absolute Maximum
junction temperature under certain very high load current conditions. Generally speaking when R
about 25Ω, it is important to calculate the maximum
junction temperature (T
determine if power supply voltages, load conditions, or
package type need t o be modified for the EL 5193C to
) for the application to
JMAX
falls below
L
13
Page 14
EL5193C
Single 300MHz Current Feedback Amplifier
EL5193C
remain in the safe operating area. These parameters are
calculated as follows:
T
JMAXTMAXθJA
nPD
××()+=
where:
0D[LPXP$PELHQW7HPSHUDWXUH
7
0$;
θ
7KHUPDO5HVLVWDQFHRIWKH3DFNDJH
-$
Q 1XPEHURI$PSOLILHUVLQWKH3DFNDJH
0D[LPXP3RZHU'LVVLSDWLRQRI(DFK
3'
0$;
$PSOLILHULQWKH3DFNDJH
PD
for each amplifier can be calculated as follows:
MAX
PD
MAX
2(VSI
SMAX
)VS(V
OUTMAX
where:
96 6XSSO\9ROWDJH
0D[LPXP6XSSO\&XUUHQWRI$
,
60$;
9
2870$;
5
/
0D[LPXP2XWSXW9ROWDJH5HTXLUHG
/RDG5HVLVWDQFH
MAX
V
----------------------------
)
×–+××=
OUTMAX
R
L
14
Page 15
Typical Application Circuits
Inverting 200mA Output Current Distribution Amplifier
EL5193C
EL5193C
Single 300M Hz Current F eedback Amplifier
+5V
IN+
IN-
-5V
+5V
IN+
IN-
-5V
500Ω500Ω
V
IN
Fast-Settling Precision Amplifier
500Ω500Ω
500Ω
0.1µF
V
+
S
OUT
VS-
0.1µF
500Ω5Ω
0.1µF
V
+
S
OUT
-
V
S
0.1µF
VS+
VS-
0.1µF
OUT
0.1µF
+5V
IN+
IN-
-5V
V
OUT
5Ω
VS+
VS-
0.1µF
0.1µF
OUT
V
OUT
500Ω
V
IN
+5V
IN+
IN-
-5V
15
Page 16
EL5193C
Single 300MHz Current Feedback Amplifier
EL5193C
Typical Application Circuits
Differential Line Driver/Receiver
V
IN
+5V
IN+
IN-
-5V
500Ω250Ω
+5V
IN+
IN-
-5V
500Ω500Ω
VS+
VS-
V
VS-
0.1µF
OUT
0.1µF
V
+
OUT
0.1µF
+
S
OUT
0.1µF
250Ω
V
-
OUT
0.1µF
1kΩ
240Ω
0.1µF
1kΩ
+5V
IN+
IN-
-5V
500Ω
+5V
IN+
IN-
-5V
500Ω500Ω
500Ω
ReceiverTransmitter
VS+
VS-
V
VS-
S
0.1µF
0.1µF
0.1µF
+
0.1µF
OUT
OUT
V
OUT
16
Page 17
EL5193C
Single 300MHz Current Feedback Amplifier
EL5193C
General Disclaimer
Specifications contained in this data sheet are in effect as of the publicat ion date shown. Elantec, Inc. re serves the r ight to make changes in th e circuitry or specifications cont ained herein at a ny time without notice. Elantec , Inc. assumes no res ponsibili ty for t he us e of an y circuits descr ibed
herein and makes no representations that they are free from patent infringement.
WARNING - Life Support Policy
Elantec, Inc. products are not authorized for and should not be used
within Life Support Systems without the specific written consent of
Elantec, Inc. Life Support systems are equipment intend ed to sup-
Elantec Semiconductor, Inc.
675 Trade Zone Blvd.
Milpitas, CA 95035
Telephone: (408) 945-1323
(888) ELANTEC
Fax:(408) 945-9305
European Office: +44-118-977-6020
Japan Technical Center: +81-45-682-5820
port or sustain life and whose failure to perform when properly used
in accordance with instructions provided can be reasonably
expected to result in significant personal injury or death. Users contemplating applicatio n of Elantec, Inc. P roducts in Li fe Support
Systems are requested to contact Elantec, Inc. factory headquarters
to establish suitable terms & conditions for these applications. Elantec, Inc. ’s warranty is limited to replacement of defective
components and does not cov er injury to persons or prop erty or
other consequential damages.
April 12, 2001
17
Printed in U.S.A.
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