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AD9914 Datasheet(PDF) 21 Page - Analog Devices

Part # AD9914
Description  3.5 GSPS Direct Digital Synthesizer with 12-Bit DAC
PDF  48 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

AD9914 Datasheet(HTML) 21 Page - Analog Devices

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Data Sheet
AD9914
Rev. C | Page 21 of 48
CLOCK INPUT (REF_CLK/REF_CLK)
REF_CLK/REF_CLK Overview
The AD9914 supports a number of options for producing the
internal SYSCLK signal (that is, the DAC sample clock) via the
REF_CLK/REF_CLK input pins. The REF_CLK input can be
driven directly from a differential or single-ended source. There
is also an internal phase-locked loop (PLL) multiplier that can
be independently enabled. However, the PLL limits the SYSCLK
signal between 2.4 GHz and 2.5 GHz operation. A differential
signal is recommended when the PLL is bypassed. A block
diagram of the REF_CLK functionality is shown in Figure 32.
Figure 32 also shows how the CFR3 control bits are associated
with specific functional blocks.
Figure 32. REF_CLK Block Diagram
The PLL enable bit is used to choose between the PLL path or
the direct input path. When the direct input path is selected,
the REF_CLK/REF_CLK pins must be driven by an external
signal source (single-ended or differential). Input frequencies
up to 3.5 GHz are supported.
Direct Driven REF_CLK/REF_CLK
With a differential signal source, the REF_CLK/REF_CLK pins
are driven with complementary signals and ac-coupled with 0.1 µF
capacitors. With a single-ended signal source, either a single-
ended-to-differential conversion can be employed or the
REF_CLK input can be driven single-ended directly. In either
case, 0.1 µF capacitors are used to ac couple both
REF_CLK/ REF_CLK pins to avoid disturbing the internal dc
bias voltage of ~1.35 V. See Figure 33 for more details.
The REF_CLK/REF_CLK input resistance is ~2.5 kΩ differential
(~1.2 kΩ single-ended). Most signal sources have relatively low
output impedances. The REF_CLK/REF_CLK input resistance
is relatively high; therefore, its effect on the termination impedance
is negligible and can usually be chosen to be the same as the output
impedance of the signal source. The bottom two examples in
Figure 33 assume a signal source with a 50 Ω output impedance.
Figure 33. Direct Connection Diagram
Phase-Locked Loop (PLL) Multiplier
An internal phase-locked loop (PLL) provides the option to use
a reference clock frequency that is significantly lower than the
system clock frequency. The PLL supports a wide range of
programmable even frequency multiplication factors (20× to
510×) as well as a programmable charge pump current and
external loop filter components (connected via the PLL
LOOP_FILTER pin). These features add an extra layer of
flexibility to the PLL, allowing optimization of phase noise
performance and flexibility in frequency plan development. The
PLL is also equipped with a PLL lock bit indicator (0x1B[24]).
The PLL output frequency range (fSYSCLK) is constrained to the
range of 2.4 GHz ≤ fSYSCLK ≤ 2.5 GHz by the internal VCO.
VCO Calibration
When using the PLL to generate the system clock, VCO calibration
is required to tune the VCO appropriately and achieve good
performance. When the reference input signal is stable, the
VCO cal enable bit in the CFR1 register, 0x00[24], must be
asserted. Subsequent VCO calibrations require that the VCO
calibration bit be cleared prior to initiating another VCO
calibration. VCO calibration must occur before DAC calibration
to ensure optimal performance and functionality.
REF_CLK
REF_CLK
2
7
2
LOOP_FILTER
58
DOUBLER ENABLE
CFR3[19]
55
54
DOUBLER
CLOCK EDGE
CFR3[16]
×2
÷ 1, 2, 4, 8
ENABLE
IN
PLL ENABLE
CFR3[18]
LOOP
FILTER
PLL
OUT
0
1
0
1
SYSCLK
INPUT DIVIDER
RESET CFR3[22]
INPUT DIVIDER RATIO
CFR3[21:20]
CHARGE
PUMP
DIVIDE
N
CFR3[15:8]
ICP
CFR3[5:3]
TERMINATION
REF_CLK
DIFFERENTIAL SOURCE,
DIFFERENTIAL INPUT
SINGLE-ENDED SOURCE,
DIFFERENTIAL INPUT
SINGLE-ENDED SOURCE,
SINGLE-ENDED INPUT
55
54
0.1µF
0.1µF
PECL,
LVPECL,
OR
LVDS
DRIVER
REF_CLK
55
54
50Ω
0.1µF
0.1µF
BALUN
(1:1)
REF_CLK
REF_CLK
REF_CLK
REF_CLK
55
54
0.1µF
0.1µF
50Ω



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