AD9763ASTZ Analog Devices Inc, AD9763ASTZ Datasheet - Page 31

IC DAC 10BIT DUAL 125MSPS 48LQFP

AD9763ASTZ

Manufacturer Part Number
AD9763ASTZ
Description
IC DAC 10BIT DUAL 125MSPS 48LQFP
Manufacturer
Analog Devices Inc
Series
TxDAC+®r
Datasheets

Specifications of AD9763ASTZ

Data Interface
Parallel
Settling Time
35ns
Number Of Bits
10
Number Of Converters
2
Voltage Supply Source
Analog and Digital
Power Dissipation (max)
450mW
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
48-LQFP
Resolution (bits)
10bit
Sampling Rate
125MSPS
Input Channel Type
Parallel
Supply Voltage Range - Analog
3V To 5.5V
Supply Voltage Range - Digital
2.7V To 5.5V
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
For Use With
AD9763-EBZ - BOARD EVAL FOR AD9763
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

Available stocks

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Manufacturer
Quantity
Price
Part Number:
AD9763ASTZ
Manufacturer:
ADI
Quantity:
180
Part Number:
AD9763ASTZ
Manufacturer:
Analog Devices Inc
Quantity:
10 000
Part Number:
AD9763ASTZ
Manufacturer:
ADI/亚德诺
Quantity:
20 000
Part Number:
AD9763ASTZRL
Manufacturer:
Analog Devices Inc
Quantity:
10 000
Part Number:
AD9763ASTZRL
Manufacturer:
ADI/亚德诺
Quantity:
20 000
Company:
Part Number:
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Quantity:
1 740
APPLICATIONS
VDSL EXAMPLE APPLICATIONS USING THE
AD9765 AND AD9767
Very high frequency digital subscriber line (VDSL) technology is
growing rapidly in applications requiring data transfer over
relatively short distances. By using quadrature amplitude
modulation (QAM) and transmitting the data in discrete multiple
tones (DMT), high data rates can be achieved.
As with other multitone applications, each VDSL tone is
capable of transmitting a given number of bits, depending on
the signal-to-noise ratio (SNR) in a narrow band around that
tone. For a typical VDSL application, the tones are evenly
spaced over the range of several kHz to 10 MHz. At the high
frequency end of this range, performance is generally limited by
cable characteristics and environmental factors such as external
interferers. Performance at the lower frequencies is much more
dependent on the performance of the components in the signal
chain. In addition to in-band noise, intermodulation from other
tones can also potentially interfere with the data recovery for
a given tone. The two graphs in Figure 79 and Figure 81
represent a 500-tone missing bin test vector, with frequencies
evenly spaced from 400 Hz to 10 MHz. This test is very
commonly done to determine if distortion limits the number of
bits that can be transmitted in a tone. The test vector has a
series of missing tones around 750 kHz, which is represented in
Figure 79, and a series of missing tones around 5 MHz, which is
represented in Figure 81. In both cases, the spurious-free
dynamic range (SFDR) between the transmitted tones and the
empty bins is greater than 60 dB.
Figure 79. AD9765 Notch in Missing Bin at 750 kHz Is Down >60 dB
–100
–110
–120
–20
–30
–40
–50
–60
–70
–80
–90
0.665
0.685
0.705
(Peak Amplitude = 0 dBm)
0.725
FREQUENCY (MHz)
0.745
0.765
0.785
0.805
0.825
Rev. F | Page 31 of 44
Figure 80. AD9767 Notch in Missing Bin at 750 kHz Is Down >60 dB
Figure 81. AD9765 Notch in Missing Bin at 5 MHz Is Down >60 dB
Figure 82. AD9767 Notch in Missing Bin at 5 MHz Is Down >60 dB
–100
–110
–120
–100
–120
–100
–110
–120
–30
–40
–50
–60
–70
–80
–90
–20
–40
–60
–80
–20
–30
–40
–50
–60
–70
–80
–90
4.85
4.85
0.665
0.685
4.90
4.90
0.705
(Peak Amplitude = 0 dBm)
(Peak Amplitude = 0 dBm)
(Peak Amplitude = 0 dBm)
4.95
4.95
AD9763/AD9765/AD9767
0.725
FREQUENCY (MHz)
FREQUENCY (MHz)
FREQUENCY (MHz)
0.745
5.00
5.00
0.765
5.05
5.05
0.785
0.805
5.10
5.10
0.825
5.15
5.15

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