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ADMV8526ACCZ-R7 Datasheet(PDF) 10 Page - Analog Devices

Part # ADMV8526ACCZ-R7
Description  1.25 GHz to 2.60 GHz Digitally Tunable Band-Pass Filter
PDF  31 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADMV8526ACCZ-R7 Datasheet(HTML) 10 Page - Analog Devices

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Data Sheet
ADMV8526
THEORY OF OPERATION
analog.com
Rev. 0 | 10 of 31
CHIP ARCHITECTURE
The ADMV8526 contains several switched capacitors that allow
the RF performance to vary. A simplified diagram of the filter
architecture is shown in Figure 18.
Figure 18. Simplified Filter Architecture Diagram
The two center frequency capacitors (CFC) are configured by the
fCENTER load value, which manipulates the fCENTER of the filter.
Likewise, the bandwidth capacitor (CBW) is configured by the band-
width load value, which adjusts the bandwidth response of the
filter. Additionally, the two match capacitors (CMATCH) are set by the
match load value, which allows adjustments to impedance matching
of the filter.
The fCENTER, bandwidth, and match load values each have 256
states (8 bits). In theory, there are over 16 million possible states for
fCENTER, bandwidth, and match load values for each band within the
ADMV8526. To simplify selection of these values, Analog Devices
has developed three patent pending interpolation functions to ease
implementation.
RF CONNECTIONS
The RF1 and RF2 pins of the ADMV8526 are dc-coupled to
on-chip ESD protection diodes. If a dc voltage is present on the
RF1 and RF2 pins from other components within the system, it
is recommended to place dc blocking capacitors in series with
these pins. The dc blocking capacitors must be selected based
on the operating frequency of the filter. Generally, a value greater
than 10 nF is sufficient to minimize insertion loss at the lower
frequencies of operation. At higher frequencies of operation, it may
be necessary to consider the parasitic elements of the selected
capacitor. Figure 19 shows a general model of a capacitor with the
parasitic elements. The parasitic series inductance (LESL) is typical-
ly of most concern given that its impedance can become dominant.
The other parasitic elements, including the leakage resistance (RL),
the dielectric absorption resistance (RDA), the dielectric absorption
capacitance (CDA), and electrical series resistance (RESR) are less
critical elements for consideration but are shown in Figure 19 for
completeness.
Figure 19. Model of a Capacitor
SPI CONFIGURATION
The SPI of the ADMV8526 allows configuration of the device for
specific functions or operations via the 5-pin SPI port. This interface
provides users with added flexibility and customization. The SPI
consists of five control lines: SFL, SCLK, SDI, SDO, and CS . For
normal SPI operations, keep the SFL pin low.
The SPI protocol consists of an R/W bit followed by 15 register
address bits and 8 data bits. The address field and data field are
organized MSB first and end with the LSB.
Set the MSB to 0 for a write operation and set the MSB to 1 for a
read operation. The write cycle must be sampled on the rising edge
of SCLK. The 24 bits of the serial write address and data are shifted
in on the SDI control line, MSB to LSB. The ADMV8526 input logic
level for the write cycle supports a 3.3 V interface.
For a read cycle, the R/W bit and the 15 register address bits shift
in on the rising edge of SCLK on the SDI control line. Then, 8 bits of
serial read data shift out on the SDO control line, MSB first, on the
falling edge of SCLK. The output logic level for a read cycle is
3.3 V. The output drivers of the SDO are enabled after the last
rising edge of SCLK of the instruction cycle and remain active
until the end of the read cycle. In a read operation, when CS is
deasserted, SDO returns to high impedance until the next read
transaction. CS is active low and must be deasserted at the end of
the write or read sequence.
An active low input on CS starts and gates a communication
cycle. The CS pin allows more than one device to be used on the
same serial communications lines. The SDO pin goes to a high
impedance state when the CS input is high. During the communica-
tion cycle, the chip select must stay low. The SPI communications
protocol follows the Analog Devices SPI standard. For more infor-
mation, see the ADI-SPI Serial Control Interface Standard (Rev
1.0).



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