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MAX9860

16-Bit Mono Audio Voice Codec

Ultra-Low Power, Mono Codec with Programmable Digital Filters

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Status Explanations for product status codes

Active: In Production.

Description

The MAX9860 is a low-power, voiceband, mono audio codec designed to provide a complete audio solution for wireless voice headsets and other mono voice audio devices. Using an on-chip bridge-tied load mono headphone amplifier, the MAX9860 can output 30mW into a 32Ω earpiece while operating from a single 1.8V power supply. Very low power consumption makes it an ideal choice for battery-powered applications.

The MAX9860's flexible clocking circuitry utilizes common system clock frequencies ranging from 10MHz to 60MHz, eliminating the need for an external PLL and multiple crystal oscillators. Both the ADC and DAC support sample rates of 8kHz to 48kHz in either synchronous or asynchronous operation. Both master and slave timing modes are supported.

Two differential microphone inputs are available with a user-programmable preamplifier and programmable gain amplifier. Automatic gain control with selectable attack/release times and signal threshold allows maximum dynamic range. A noise gate with selectable threshold provides a means to quiet the channel when no signal is present. Both the DAC and ADC digital filters provide full attenuation for out-of-band signals as well as a 5th order GSM-compliant digital highpass filter. A digital side tone mixer provides loopback of the microphones/ADC signal to the DAC/headphone output.

Serial DAC and ADC data is transferred over a flexible digital I²S-compatible interface that also supports TDM mode. Mode settings, volume control, and shutdown are programmed through a 2-wire, I²C-compatible interface.

The MAX9860 is fully specified over the -40°C to +85°C extended temperature range and is available in a low-profile, 4mm x 4mm, 24-pin thin QFN package.

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Data Sheet

Download this datasheet in PDF formatDownload Rev 1 (PDF, 784kB)
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An evaluation kit is available: MAX9860EVKIT

Key Features

  • 1.8V Single-Supply Operation
  • Digital Highpass Elliptical Filters with Notch for 217Hz (GSM)
  • Mono 30mW BTL Headphone Amplifier
  • Dual Low-Noise Microphone Inputs
  • Automatic Microphone Gain Control and Noise Gate
  • 90dB DAC DR (fS = 48kHz)
  • 81dB ADC DR (fS = 48kHz)
  • Supports Master Clock Frequencies from 10MHz to 60MHz
  • Supports Sample Rates from 8kHz to 48kHz
  • Flexible Digital Audio Interface
  • Clickless/Popless Operation
  • 2-Wire, I²C-Compatible Control Interface
  • Available in 24-Pin, Thin QFN, 4mm x 4mm x 0.8mm Package
 

Applications/Uses

  • Audio Accessories
  • Audio Headsets
  • Mobile Phones
  • Portable Navigation Device
  • Smart Phones
  • VoIP Phones
   

Key Specifications:

Audio Data Converters
Part Number Functions VSUPPLY
(V)
VSUPPLY
(V)
IQ
(mA)
ADCs DACs SNR
(dB)
Bit Depth Sample Rate
(kHz)
SNR
(dB)
Bit Depth Sample Rate
(kHz)
Interface Smallest Available Pckg.
(mm2)
Budgetary Price
min max ADC ADC ADC DAC DAC DAC max w/pins See Notes
MAX9860  Audio CODEC
1.7 (Digital)
1.7 (Analog)
1.9 2.51 (Playback) 2 1 83 16 8 to 48 90 16 8 to 48
Audio - I2S
Serial - I2C
16.8 $0.95 @1k
See All Audio Data Converters (10)
Pricing Notes:
This pricing is BUDGETARY, for comparing similar parts. Prices are in U.S. dollars and subject to change. Quantity pricing may vary substantially and international prices may differ due to local duties, taxes, fees, and exchange rates. For volume-specific prices and delivery, please see the price and availability page or contact an authorized distributor.


Diagram

MAX9860: Simplified Block Diagram
Simplified Block Diagram

Notes and Comments

The MAX9860 features a master clock digital technology that allows any master clock from 10MHz to 60MHz, consuming very little power and avoiding an external PLL. The device also features programmable digital filters for the ADC and DAC allowing to notch the 217Hz GSM-related noise at 8kHz or 16kHz.

More Information

New Product Press Release 2009-05-12 ]

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Information Index

Document Ref.: 19-4349 Rev 1; 2009-12-07
This page last modified: 2010-03-04




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