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PDF SI4063-C Data sheet ( Hoja de datos )

Número de pieza SI4063-C
Descripción LOW-CURRENT TRANSMITTER
Fabricantes Silicon Laboratories 
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Si4063/60-C
HIGH-PERFORMANCE, LOW-CURRENT TRANSMITTER
Features
Frequency range = 142–1050 MHz Power supply = 1.8 to 3.8 V
Modulation
Highly configurable packet handler
(G)FSK, 4(G)FSK, (G)MSK
TX 129 byte FIFO
OOK
Low BOM
Max output power
Low battery detector
+20 dBm (Si4063)
Temperature sensor
+13 dBm (Si4060)
20-Pin QFN package
PA support for +27 or +30 dBm IEEE 802.15.4g compliant
Ultra low current powerdown modesSuitable for FCC Part 90 Mask D, FCC
30 nA shutdown, 40 nA standby part 15.247, 15,231, 15,249, ARIB T-108,
Data rate = 100 bps to 1 Mbps
Fast wake times
T-96, T-67, China regulatory ETSI EN
300 220
Applications
Pin Assignments
Smart metering
Remote control
Home security and alarm
Telemetry
Garage and gate openers
Description
Remote keyless entry
Home automation
Industrial control
Sensor networks
Health monitors
Electronic shelf labels
Silicon Laboratories' Si406x devices are high-performance, low-current
transmitters covering the sub-GHz frequency bands from 142 to
1050 MHz. The radios are part of the EZRadioPRO® family, which
includes a complete line of transmitters, receivers, and transceivers
covering a wide range of applications. All parts offer extremely low active
and standby current consumption. The Si406x includes optimal phase
noise performance for narrow band applications, such as FCC Part90 and
169 MHz wireless Mbus. The Si4063 offers exceptional output power of
up to +20 dBm with outstanding TX efficiency. The high output power
allows extended ranges and highly robust communication links. The
Si4060 active mode TX current consumption of 18 mA at +10 dBm
coupled with extremely low standby current and fast wake times ensure
extended battery life in the most demanding applications. The Si4063 can
achieve up to +27 dBm output power with built-in ramping control of a
low-cost external FET. The devices can meet worldwide regulatory
standards: FCC, ETSI, wireless MBus, and ARIB. All devices are
designed to be compliant with 802.15.4g and WMbus smart metering
standards. The devices are highly flexible and can be configured via the
Wireless Development Suite (WDS) available at Silicon Labs web site.
SDN 1 20 19 18 17 16
NC 2
15 nSEL
NC 3
TX 4
GND
PAD
14 SDI
13 SDO
NC 5
12 SCLK
6 7 8 9 10 11 nIRQ
Patents pending
Rev 1.0 10/14
Copyright © 2014 by Silicon Laboratories
Si4063/60-C

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SI4063-C pdf
Si4063/60-C
Table 2. Synthesizer AC Electrical Characteristics1
Parameter
Synthesizer Frequency
Range (Si4063/60)
Symbol
FSYN
Test Condition
Min Typ Max Unit
850 — 1050 MHz
350 — 525 MHz
284 — 350 MHz
142 — 175 MHz
Synthesizer Frequency
Resolution2
Synthesizer Settling Time
Phase Noise
FRES-960
850–1050 MHz
FRES-525
420–525 MHz
FRES-420
350–420 MHz
FRES-350
284–350 MHz
FRES-175
142–175 MHz
tLOCK
Measured from exiting Ready mode with
XOSC running to any frequency.
Including VCO Calibration.
L(fM) F = 10 kHz, 169 MHz, High Perf Mode
F = 100 kHz, 169 MHz, High Perf Mode
F = 1 MHz, 169 MHz, High Perf Mode
F = 10 MHz, 169 MHz, High Perf Mode
F = 10 kHz, 915 MHz, High Perf Mode
F = 100 kHz, 915 MHz, High Perf Mode
F = 1 MHz, 915 MHz, High Perf Mode
F = 10 MHz, 915 MHz, High Perf Mode
28.6
14.3
11.4
9.5
4.7
50
–117
–120
–138
–148
–102
–105
–125
–138
— Hz
— Hz
— Hz
— Hz
— Hz
— µs
— dBc/Hz
— dBc/Hz
— dBc/Hz
— dBc/Hz
— dBc/Hz
— dBc/Hz
— dBc/Hz
— dBc/Hz
Notes:
1. All minimum and maximum values are guaranteed across the recommended operating conditions of supply voltage
and from –40 to +85 °C unless otherwise stated. All typical values apply at VDD = 3.3 V and 25 °C unless otherwise
stated.
2. Default API setting for modulation deviation resolution is double the typical value specified.
Rev 1.0
5

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SI4063-C arduino
Si4063/60-C
2. Functional Description
The Si406x devices are high-performance, low-current, wireless ISM transmitters that cover the sub-GHz bands.
The wide operating voltage range of 1.8–3.8 V and low current consumption make the Si406x an ideal solution for
battery powered applications.
A single high precision local oscillator (LO) is used for transmit mode. The LO is generated by an integrated VCO
and  Fractional-N PLL synthesizer. The synthesizer is designed to support configurable data rates from 100 bps
to 1 Mbps. The Si4063/60 operate in the frequency bands of 142–175, 283–350, 350–525, and 850–1050 MHz
with a maximum frequency accuracy step size of 28.6 Hz. The transmit FSK data is modulated directly into the 
data stream and can be shaped by a Gaussian low-pass filter to reduce unwanted spectral content.
The Si4063/60 contains a power amplifier (PA) that supports output power up to +20 dBm with very high efficiency,
consuming only 70 mA at 169 MHz and 85 mA at 915 MHz. The integrated +20 dBm power amplifier can also be
used to compensate for the reduced performance of a lower cost, lower performance antenna or antenna with size
constraints due to a small form-factor. Competing solutions require large and expensive external PAs to achieve
comparable performance. The Si4060 is designed to support single coin cell operation with current consumption
below 18 mA for +10 dBm output power. Two match topologies are available for the Si4060, Class-E and
switched-current. Class-E matching provides optimal current consumption, while switched-current matching
demonstrates the best performance over varying battery voltage and temperature with slightly higher current
consumption. The PA is single-ended to allow for easy antenna matching and low BOM cost. The PA incorporates
automatic ramp-up and ramp-down control to reduce unwanted spectral spreading. The Si406x family supports
frequency hopping to extend the link range and improve performance. A highly configurable packet handler allows
for autonomous encoding of nearly any packet structure. Additional system features, such as an automatic
wake-up timer, low battery detector, and 129 byte TX FIFOs, reduce overall current consumption and allows for the
use of lower-cost system MCUs. An integrated temperature sensor, power-on-reset (POR), and GPIOs further
reduce overall system cost and size. The Si406x is designed to work with an MCU, crystal, and a few passive
components to create a very low-cost system.
30 MHz
SDN
L4 L3 L2
C4 C3
C1
C2
SDN 1
NC 2
NC 3
TX 4
NC 5
Si406x
15 nSEL
14 SDI
13 SDO
12 SCLK
11 nIRQ
L1
VDD
C5 C6
C7
Figure 1. Si406x Application Example
Rev 1.0
11

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