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AN3003 Datenblatt(PDF) 2 Page - M/A-COM Technology Solutions, Inc.

Teilenummer AN3003
Bauteilbeschribung  Integrating SMT Synthesizer Solutions into Wireless Designs
PDF  3 Pages
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Hersteller  MA-COM [M/A-COM Technology Solutions, Inc.]
Direct Link  http://www.macomtech.com
Logo MA-COM - M/A-COM Technology Solutions, Inc.

AN3003 Datenblatt(HTML) 2 Page - M/A-COM Technology Solutions, Inc.

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Integrating SMT Synthesizer Solutions into Wireless Designs
Rev. V2
Application Note
AN3003
• North America Tel: 800.366.2266 • Europe Tel: +353.21.244.6400
• India Tel: +91.80.4155721
• China Tel: +86.21.2407.1588
2
Visit www.macomtech.com for additional data sheets and product information.
M/A-COM Technology Solutions Inc. and its affiliates reserve the right to make
changes to the product(s) or information contained herein without notice.
External Reference
The external reference for the synthesizer should
not be chosen arbitrarily. Consideration must be
made for the waveform and the level. M/A-COM
synthesizers are specified for a 1V pk-pk low-pass-
filtered square wave, which is internally ac coupled
into the PLL IC input. While an unfiltered TTL /
CMOS reference signal can be used, there is a
potential for spurious products if N x Fref falls into the
synthesizer output band, so care should be taken to
ensure that harmonics do not fall into the operational
band. The internal PLL chip will function with a wide
range of reference input levels, but the noise will be
degraded if the slew rate is insufficient. For this
reason, low frequency / low level sine waves are not
recommended.
Noise and spurious on the reference signal also
need to be considered, as they will be increased by
20 log(Fout / Fref) if they occur within the synthesizer
loop bandwidth.
Lock Detector Circuit
In digital mode (where applicable), the Lock Detect
output is a CMOS ‘high’ when the loop is locked and
‘low’ when it is out of lock.
In analog open-drain mode, when the loop is locked,
Lock Detect is ‘high’ with narrow ‘low’ pulses at the
phase comparison frequency. When the loop is out
of lock, Lock Detect alternates between ‘high’ and
‘low’, at a rate dependent on the frequency error. An
external filter is needed, to turn these conditions into
stable ‘high’ or ‘low’ states.
Figure 3 shows a typical filter circuit. The component
values can be determined after assessing the
qualifications for an in-lock condition. This can be
specified as being a particular number (N) of
consecutive reference cycles of duration (D) during
which the phase comparator phase error is some
factor less than the reference period. For example, if
the phase comparison frequency is 10kHz, one
might select the threshold for in-lock as being when
5 consecutive phase comparisons have elapsed
where the phase errors are 1000 times shorter than
the reference period, i.e. 100ns. Here, N=5 and
F=1000.
For the filter shown, when used in conjunction with
an open-drain output, the resistor value for R2 would
be chosen to be a factor of F x R1. Thus if R1 were
pulled low for only 1/1000 of the phase comparison
period, its ‘effective’ resistance would be similar to
R2. The two resistors for that duty cycle appear on
average to be two 1000 x R1 resistors connected
across the supply voltage with their common node
voltage (Vc) at Vcc/2. Phase errors larger than 1/1000
of the phase comparison period would drag the
average voltage of node Vc below Vcc/2, indicating
an out-of-lock condition. If the time constant R2 x C1
is calculated to be N x the phase comparison period,
i.e. 500
μs, then the voltage of node V
c would fall
below Vcc/2 only after 5 consecutive phase errors
whose average pulse width was >100ns.
Owing to the possibility of digital noise being present
on the Lock Detect line, it should be decoupled as
closely to the pin as possible. Additionally, the trace
leading to this pin should be isolated as far as possi-
ble from the RF output trace.
+Vcc
VCO/
Synth.
rfc
LD
Vcc
LOCK
DETECT
MMBT200
10k
100k
0.01 uF
33k
Figure 2
Figure 3



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