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ADS5500MPAPREP Datenblatt(PDF) 25 Page - Texas Instruments

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Teilenummer ADS5500MPAPREP
Bauteilbeschribung  14-BIT 125-MSPS Analog-to-digital Converter
PDF  36 Pages
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Hersteller  TI1 [Texas Instruments]
Direct Link  http://www.ti.com
Logo TI1 - Texas Instruments

ADS5500MPAPREP Datenblatt(HTML) 25 Page - Texas Instruments

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ADS5500-EP
SGLS286C − JUNE 2005 – REVISED SEPTEMBER 2008
www.ti.com
25
This differential input topology produces a high level of
ac performance for high sampling rates. It also results
in a high usable input bandwidth, especially important
for high intermediate frequency (IF) or undersampling
applications. The ADS5500 requires each of the analog
inputs (INP, INM) to be externally biased around the
common-mode level of the internal circuitry (CM, pin
17). For a full-scale differential input, each of the
differential lines of the input signal (pins 19 and 20)
swings symmetrically between CM + 0.575 V and CM
– 0.575 V. This means that each input is driven with a
signal of up to CM
± 0.575 V, so that each input has a
maximum differential signal of 1.15 VPP for a total
differential input signal swing of 2.3 VPP. The maximum
swing is determined by the two reference voltages − the
top reference (REFP, pin 29), and the bottom reference
(REFM, pin 30).
The ADS5500 obtains optimum performance when the
analog inputs are driven differentially. The circuit shown
in Figure 6 shows one possible configuration using an
RF transformer.
R
0
50
W
Z
0
50
W
1:1
INP
ADS5500
INM
CM
ADT1−1WT
R
50
W
1nF
0.1
mF
AC Signal
Source
10
W
Figure 6. Transformer Input to Convert
Single-Ended Signal to Differential Signal
The single-ended signal is fed to the primary winding of
an RF transformer. Since the input signal must be
biased around the common-mode voltage of the
internal circuitry, the common-mode voltage (VCM) from
the ADS5500 is connected to the center tap of the
secondary winding. To ensure a steady low-noise VCM
reference, best performance is obtained when the CM
(pin 17) output is filtered to ground with 0.1−
µF and
0.01-
µF low-inductance capacitors.
Output VCM (pin 17) is designed to directly drive the
ADC input. When providing a custom CM level, be
aware that the input structure of the ADC sinks a
common-mode current in the order of 4 mA (2 mA per
input). Equation 1 describes the dependency of the
common-mode current and the sampling frequency:
4mA
fs
125MSPS
Where: fS > 60 MSPS.
This equation designs the output capability and
impedance of the driving circuit accordingly.
When it is necessary to buffer or apply a gain to the
incoming analog signal, it is possible to combine
single-ended operational
amplifiers
with
an
RF
transformer or to use a differential input/output amplifier
without a transformer to drive the input of the ADS5500.
Texas
Instruments
offers
a
wide
selection
of
single-ended operational amplifiers (including the
THS3201, THS3202, OPA847, and OPA695) that can
be selected, depending on the application. An RF gain
block amplifier, such as the TI THS9001, can also be
used with an RF transformer for very high input
frequency
applications.
The
THS4503
is
a
recommended
differential
input/output
amplifier.
Table 4 lists the recommended amplifiers.
When using single-ended operational amplifiers (such
as the THS3201, THS3202, OPA847, or OPA695) to
provide gain, a three-amplifier circuit is recommended
with one amplifier driving the primary of an RF
transformer and one amplifier in each of the legs of the
secondary driving the two differential inputs of the
ADS5500. These three amplifier circuits minimize
even-order harmonics. For high frequency inputs, an
RF gain block amplifier can be used to drive a
transformer primary; in this case, the transformer
secondary connections can drive the input of the
ADS5500 directly (see Figure 6) or with the addition of
the filter circuit (see Figure 7).
Figure 7 shows how RIN and CIN can be placed to isolate
the signal source from the switching inputs of the ADC
and to implement a low-pass RC filter to limit the input
noise in the ADC. It is recommended that these
components be included in the ADS5500 circuit layout
when any of the amplifier circuits discussed previously
are used. The components allow fine tuning of the
circuit performance. Any mismatch between the
differential lines of the ADS5500 input produces a
degradation in performance at high input frequencies,
mainly characterized by an increase in the even-order
harmonics. In this case, special care should be taken to
keep as much electrical symmetry as possible between
both inputs.
Another possible configuration for lower-frequency
signals is the use of differential input/output amplifiers
that can simplify the driver circuit for applications
requiring dc coupling of the input. Flexible in their
configurations (see Figure 8), such amplifiers can be
used for single-ended-to-differential conversion signal
amplification.
(1)



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