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DAC5652MPFBREP.A Datasheet(PDF) 19 Page - Texas Instruments

Part # DAC5652MPFBREP.A
Description  DUAL 10-BIT, 200 MSPS, DIGITAL-TO-ANALOG CONVERTER
PDF  30 Pages
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Manufacturer  TI2 [Texas Instruments]
Direct Link  https://www.ti.com
Logo TI2 - Texas Instruments

DAC5652MPFBREP.A Datasheet(HTML) 19 Page - Texas Instruments

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4:1
100
Ω
100
Ω
RLOAD
50
Ω
AGND
IOUT2
IOUT1
1:1
50
Ω
50
Ω
RLOAD
50
Ω
100
Ω
AGND
IOUT2
IOUT1
DAC5652-EP
www.ti.com
SGLS341C – JUNE 2006 – REVISED APRIL 2013
The single-ended configuration may be considered for applications requiring a unipolar output voltage.
Connecting a resistor from either one of the outputs to ground converts the output current into a ground-
referenced voltage signal. To improve on the dc linearity by maintaining a virtual ground, an I-to-V or operational
amplifier configuration may be considered.
Differential With Transformer
Using an RF transformer provides a convenient way of converting the differential output signal into a single-
ended signal while achieving excellent dynamic performance. The appropriate transformer must be carefully
selected based on the output frequency spectrum and impedance requirements.
The differential transformer configuration has the benefit of significantly reducing common-mode signals, thus
improving the dynamic performance over a wide range of frequencies. Furthermore, by selecting a suitable
impedance ratio (winding ratio), the transformer can provide optimum impedance matching while controlling the
compliance voltage for the converter outputs.
Figure 19 and Figure 20 show 50
Ω doubly-terminated transformer configurations with 1:1 and 4:1 impedance
ratios, respectively. Note that the center tap of the primary input of the transformer has to be grounded to enable
a dc-current flow. Applying a 20 mA full-scale output current leads to a 0.5 VPP output for a 1:1 transformer and a
1 VPP output for a 4:1 transformer. In general, the 1:1 transformer configuration has slightly better output
distortion, but the 4:1 transformer has 6 dB higher output power.
Figure 19. Driving a Doubly Terminated 50
Ω Cable Using a 1:1 Impedance Ratio Transformer
Figure 20. Driving a Doubly Terminated 50
Ω Cable Using a 4:1 Impedance Ratio Transformer
Copyright © 2006–2013, Texas Instruments Incorporated
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