Clock/Timing - Real Time Clocks

Image Part Number Description / PDF Quantity Rfq
ISL12026IBZ-T

ISL12026IBZ-T

Intersil (Renesas Electronics America)

IC RTC CLK/CALENDAR I2C 8-SOIC

2062

DS1501YZN+

DS1501YZN+

Maxim Integrated

IC RTC CLK/CALENDAR PAR 28-SOIC

2434450

RX-4045SA:AA0:PURE SN

RX-4045SA:AA0:PURE SN

Epson

IC RTC CLK/CALENDAR SPI 14-SOP

0

DS3232MZ+TRL

DS3232MZ+TRL

Maxim Integrated

IC RTC CLK/CALENDAR I2C 8-SOIC

4978

RX-8035LC:AA3 PURE SN

RX-8035LC:AA3 PURE SN

Epson

IC RTC EVENT REC I2C 12-VSOJ

0

MCP7940N-E/MS

MCP7940N-E/MS

Roving Networks / Microchip Technology

IC RTC CLK/CALENDAR I2C 8-MSOP

246

1339AC-2SRGI8

1339AC-2SRGI8

Renesas Electronics America

IC RTC CLK/CALENDAR I2C 16-SOIC

0

RTC-4574JE:B ROHS

RTC-4574JE:B ROHS

Epson

IC REAL TIME CLOCK/CALENDAR

0

RTC-4543SA:B:PURE SN

RTC-4543SA:B:PURE SN

Epson

IC RTC CALENDAR 3-WIRE SER 14SOP

0

ISL12029AIB27Z

ISL12029AIB27Z

Intersil (Renesas Electronics America)

REAL TIME CLOCK

10986

KR3225Y32768EAW30TAA

KR3225Y32768EAW30TAA

KYOCERA Corporation

IC RTC CLK/CALENDAR I2C SMD

0

M48T08Y-10MH1F

M48T08Y-10MH1F

STMicroelectronics

IC RTC CLK/CALENDAR PAR 28SOH

906

DP8573AVX/NOPB

DP8573AVX/NOPB

DP8573A REAL TIME CLOCK (RTC)

1200

MCP7940N-I/MS

MCP7940N-I/MS

Roving Networks / Microchip Technology

IC RTC CLK/CALENDAR I2C 8-MSOP

1616

DS1685-3+

DS1685-3+

Analog Devices, Inc.

DS1685 5V REAL-TIME CLOCK

192

DS12887+

DS12887+

Maxim Integrated

IC RTC CLK/CALENDAR PAR 24-EDIP

1880

DS1685QN-5+

DS1685QN-5+

Maxim Integrated

IC RTC CLK/CALENDAR PAR 28-PLCC

936

DS1306N+

DS1306N+

Maxim Integrated

IC RTC CLK/CALENDAR SPI 16-DIP

453

DS17287-5+

DS17287-5+

Maxim Integrated

IC RTC CLK/CALENDAR PAR 24-EDIP

127

PCF2129AT/2,518

PCF2129AT/2,518

NXP Semiconductors

IC RTC CLK/CAL I2C/SPI 20-SOIC

2680

Clock/Timing - Real Time Clocks

1. Overview

Real-Time Clocks (RTCs) are integrated circuits designed to maintain accurate timekeeping in electronic systems, even during power interruptions. They provide critical time-of-day, date, and alarm functions through battery-backed or capacitor-powered circuits. RTCs are essential for applications requiring precise temporal synchronization in embedded systems, consumer electronics, industrial automation, and automotive systems.

2. Major Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Parallel Interface RTCs8/16-bit parallel data buses, fast accessIndustrial controllers, legacy systems
I2C/SPI Interface RTCsSerial communication, low pin countSmartphones, IoT devices
Embedded Crystal RTCsIntegrated crystal oscillator, reduced footprintWearables, medical devices
Low-Power RTCsSub-1 A standby current, extended battery lifeEnergy harvesting systems, sensors

3. Structure and Components

Typical RTC architecture includes:

  • 32.768kHz crystal oscillator circuit
  • Binary counter with BCD/time registers
  • Power supply monitoring and switching circuitry
  • Communication interface (I2C, SPI, etc.)
  • Alarm and interrupt generation modules
  • Temperature compensation circuitry (for high-precision variants)

Common packaging: 8-24 pin DIP/SOP/TSSOP, with optional integrated crystal in QFN packages.

4. Key Technical Specifications

ParameterImportanceTypical Values
Timekeeping AccuracyDetermines cumulative error over time 2ppm (0 C-40 C), 20ppm industrial
Supply CurrentImpacts battery life800nA-2 A @ 3V
Operating TemperatureDefines environmental reliability-40 C to +85 C standard
Interface SpeedLimits system communication bandwidth400kHz I2C, 10MHz SPI
Timekeeping VoltageDetermines minimum operation threshold1.3V-3.7V

5. Application Areas

Key industries and equipment:

  • Consumer Electronics: Smartphones, Set-top boxes, Digital cameras
  • Industrial Automation: PLCs, SCADA systems, Data loggers
  • Medical Devices: Patient monitors, Infusion pumps, Diagnostic equipment
  • Automotive: Telematics units, ADAS, In-vehicle infotainment
  • Smart Energy: Smart meters, Grid sensors, Energy storage systems

Case Study: DS3231 RTC in solar inverters maintains time-stamped energy production logs during grid outages.

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
Analog DevicesADT74x 0.5ppm accuracy, I2C interface
Maxim IntegratedDS3231Integrated TCXO, 2ppm
STMicroelectronicsM41T82Auto-calibration, 256Hz output
NXP SemiconductorsPCF8523Low-cost I2C, 1.8V operation
Texas InstrumentsRV-8263-C33V lithium-backed, alarm functions

7. Selection Guidelines

Key considerations:

  • Accuracy requirements ( 2ppm vs 20ppm)
  • Interface compatibility (I2C vs SPI vs parallel)
  • Power budget (active vs standby current)
  • Environmental conditions (temperature, vibration)
  • Package size vs PCB space limitations
  • Battery backup vs capacitor-based solutions
  • Additional features (alarms, square wave outputs)

Example: For wearables: prioritize ultra-low power (M41T94 @ 600nA) with small TSSOP package.

8. Industry Trends

Emerging trends include:

  • Integration with MEMS oscillators replacing traditional crystals
  • Advancements in temperature compensation algorithms ( 0.1ppm achievable)
  • System-in-Package (SiP) solutions combining RTC with sensors
  • Increased adoption in edge computing devices for timestamped data processing
  • Automotive-grade RTCs for autonomous vehicle synchronization

Market drivers: Growth in IoT devices (projected 12% CAGR 2023-2030) and industrial automation systems.

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