Silicon Laboratories SI4734/35-B20 manual Digital Audio Interface Si4735 Only, Audio Data Formats

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Si4734/35-B20

4.7. Digital Audio Interface (Si4735 Only)

The digital audio interface operates in slave mode and supports three different audio data formats:

„I2S

„Left-Justified

„DSP Mode

4.7.1. Audio Data Formats

In I2S mode, by default the MSB is captured on the second rising edge of DCLK following each DFS transition. The remaining bits of the word are sent in order, down to the LSB. The left channel is transferred first when the DFS is low, and the right channel is transferred when the DFS is high.

In Left-Justified mode, by default the MSB is captured on the first rising edge of DCLK following each DFS transition. The remaining bits of the word are sent in order, down to the LSB. The left channel is transferred first when the DFS is high, and the right channel is transferred when the DFS is low.

In DSP mode, the DFS becomes a pulse with a width of 1 DCLK period. The left channel is transferred first, followed right away by the right channel. When transferring the digital audio data in DSP mode, the MSB of the left channel can be transferred on the first rising edge of DCLK following the DFS pulse or on the second rising edge.

In all audio formats, depending on the word size, DCLK frequency, and sample rates, there may be unused DCLK cycles after the LSB of each word and before the next DFS transition and MSB of the next word. In addition, if preferred, the user can configure the MSB to be captured on the falling edge of DCLK via properties.

The number of audio bits can be configured for 8, 16, 20, or 24 bits.

4.7.2. Audio Sample Rates

The device supports a number of industry-standard sampling rates including 32, 40, 44.1, and 48 kHz. The digital audio interface enables low-power operation by eliminating the need for redundant DACs on the audio baseband processor.

Rev. 1.0

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Contents Functional Block Diagram FeaturesApplications DescriptionSi4734/35-B20 Table of Contents Parameter Symbol Test Condition Min Typ Max Unit Electrical SpecificationsParameter Symbol Value Unit Recommended Operating ConditionsParameter Symbol Test Condition Min Typ Max Unit FM Mode DC CharacteristicsAM/SW/LW Mode Supplies and InterfaceParameter Symbol Min Typ Max Unit RSTGPO1, GPO2/INT Start Wire Control Interface Characteristics1,2,3Sclk Sdio Sclk SENSPI Control Interface Write Timing Parameters Dclk DFS Dout FM Receiver Characteristics1,2 RDS Bler 5%Fmdeemphasis = Si4734/35-B20 KHz Long Wave LW 153 279 Refclkprescale RefclkCrystal Oscillator Si4734/35-GM Typical Application SchematicBill of Materials Components Value/Description SupplierOptional Components Overview Functional Description5.5 3.6VFM Receiver Operating ModesAM Receiver SW ReceiverDigital Audio Interface Si4735 Only Audio Data FormatsAudio Sample Rates I2S Digital Audio Format Stereo DAC Stereo Audio Processing De-emphasisSoft Mute RDS/RBDS Processor Si4735 OnlyBus Mode Select on Rising Edge TuningSeek Reference ClockSPI Control Interface Mode Reset, Power Up, and Power Down Firmware UpgradesProgramming with Commands GPO OutputsSi473x Command Summary Commands and PropertiesCmd DescriptionSi473x Property Summary Prop Name Description DefaultRxvolume RdsconfigAmdeemphasis AmchannelfilterPin Numbers Name Description Pin Descriptions Si4734/35-GMPart Number Description Package Operating Ordering GuideQFN RDS/RBDSPackage Markings Top Marks Si4734/35 Top MarkTop Mark Explanation Package Outline Si4734/35 QFN Symbol Millimeters Min Nom MaxPCB Land Pattern PCB Land Pattern Si4734/35 QFNPCB Land Pattern Dimensions Symbol Millimeters Min MaxBSC Additional Reference Resources Revision 0.4 to Revision Document Change ListContact Information

SI4734/35-B20 specifications

Silicon Laboratories SI4734/35-B20 is an advanced, highly integrated broadcast radio receiver designed for various consumer applications. Hailed for its compactness and versatility, the SI4734/35-B20 offers extensive features that enable radio reception across multiple frequency bands, including AM, FM, and shortwave. It caters to the needs of manufacturers looking to incorporate reliable radio capabilities into their devices, ensuring quality sound and performance without the cumbersome designs typically associated with traditional radio receivers.

At the heart of the SI4734/35-B20 are performance-optimized technologies. One standout feature is the device's ability to support digital and analog processing simultaneously, utilizing Silicon Labs’ proprietary digital signal processing (DSP) technology. This architecture not only enhances signal clarity but also helps in mitigating noise, enabling users to experience a superior audio quality across varied environments.

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The SI4734/35-B20 is designed with a robust set of features for ease of integration into various systems. The device supports multiple programmable interfaces, including I2C, providing flexibility in communication with microcontrollers and facilitating straightforward integration into existing designs. Because of its programmable architecture, developers can customize the receiver’s capabilities according to the specific needs of their applications.

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The SI4734/35-B20 also possesses a wide frequency range, accommodating both standard and niche applications. Its compact form factor and surface-mount technology (SMT) footprint further enhance its appeal to developers seeking to maximize board space in their designs.

In conclusion, the Silicon Laboratories SI4734/35-B20 is a significant advancement in radio receiver technology, combining advanced DSP, low power consumption, and ease of integration. These attributes make it a preferred choice for engineers and manufacturers looking to deliver high-quality audio experiences across a range of consumer electronics, from radios to multifunctional smart devices.