ATA5760N3-TGQY Atmel, ATA5760N3-TGQY Datasheet - Page 6

IC RCVR ASK/FSK 868MHZ 20SOIC

ATA5760N3-TGQY

Manufacturer Part Number
ATA5760N3-TGQY
Description
IC RCVR ASK/FSK 868MHZ 20SOIC
Manufacturer
Atmel
Datasheet

Specifications of ATA5760N3-TGQY

Frequency
868MHz
Sensitivity
-110dBm
Data Rate - Maximum
10 kBaud
Modulation Or Protocol
ASK, FSK
Applications
Telemetering and Security Systems
Current - Receiving
7.8mA
Data Interface
PCB, Surface Mount
Antenna Connector
PCB, Surface Mount
Voltage - Supply
4.5 V ~ 5.5 V
Operating Temperature
-40°C ~ 105°C
Package / Case
20-SOIC (0.300", 7.50mm Width)
Operating Temperature (min)
-40C
Operating Temperature (max)
105C
Operating Temperature Classification
Industrial
Operating Supply Voltage (min)
4.5V
Operating Supply Voltage (typ)
5V
Operating Supply Voltage (max)
5.5V
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Features
-
Memory Size
-
Lead Free Status / Rohs Status
Compliant
4. Analog Signal Processing
4.1
4.2
6
IF Filter
Limiting RSSI Amplifier
ATA5760/ATA5761
The signals coming from the RF front-end are filtered by the fully integrated 4th-order IF filter.
The IF center frequency is
f
f
f
The nominal bandwidth is B
ATA5760N3.
The subsequent RSSI amplifier enhances the output signal of the IF amplifier before it is fed into
the demodulator. The dynamic range of this amplifier is R
operated within its linear range, the best S/N ratio is maintained in ASK mode. If the dynamic
range is exceeded by the transmitter signal, the S/N ratio is defined by the ratio of the maximum
RSSI output voltage and the RSSI output voltage due to a disturber. The dynamic range of the
RSSI amplifier is exceeded if the RF input signal is about 60 dB higher compared to the RF input
signal at full sensitivity.
In FSK mode the S/N ratio is not affected by the dynamic range of the RSSI amplifier, because
only the hard limited signal from a high gain limiting amplifier is used by the demodulator.
The output voltage of the RSSI amplifier is internally compared to a threshold voltage V
V
SENS and GND or V
means it is possible to operate the receiver at a lower sensitivity.
If R
nect the pin SENS directly to GND to get the maximum sensitivity.
If R
defined by the value of R
input. The reduced sensitivity depends on the signal strength at the output of the RSSI amplifier.
Since different RF input networks may exhibit slightly different values for the LNA gain, the sen-
sitivity values given in the electrical characteristics refer to a specific input matching. This
matching is illustrated in
the same time power matching at RF_IN.
R
full sensitivity to reduced sensitivity or vice versa at any time. In polling mode, the receiver will
not wake up if the RF input signal does not exceed the selected sensitivity. If the receiver is
already active, the data stream at pin DATA will disappear when the input signal is lower than
defined by the reduced sensitivity. Instead of the data stream, the pattern according to
4-1
Figure 4-1.
IF
IF
IF
Th_red
Sens
= 950 kHz for the 868.3 MHz and B
= 989 kHz for the 868.3 MHz and B
= 1 MHz for the 915 MHz version.
Sens
Sens
is issued at pin DATA to indicate that the receiver is still active (see
can be connected to V
is determined by the value of the external resistor R
is connected to V
is connected to GND, the receiver switches to full sensitivity. It is also possible to con-
Steady L State Limited DATA Output Pattern
S
. The output of the comparator is fed into the digital control logic. By this
DATA
Figure 14-1 on page 30
S
, the receiver operates at a lower sensitivity. The reduced sensitivity is
Sens
S
, the maximum sensitivity by the signal-to-noise ratio of the LNA
or GND via a microcontroller. The receiver can be switched from
IF
t
DATA_min
= 600 kHz for ATA5760/ATA5761 and B
IF
IF
= 600 kHz version,
= 300 kHz version and
t
DATA_L_max
and exhibits the best possible sensitivity and at
Sens
RSSI
. R
= 60 dB. If the RSSI amplifier is
Sens
is connected between pin
Figure 13-2 on page
IF
= 300 kHz for
4896D–RKE–08/08
Figure
Th_red
28).
.

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