Embedded - Microcontrollers

Image Part Number Description / PDF Quantity Rfq
P8X32A-M44

P8X32A-M44

Parallax, Inc.

IC MCU 32BIT 32KB ROM 44QFN

125

P2X8C4M64P

P2X8C4M64P

Parallax, Inc.

P2X8C4M64P P2 MULTICORE UC

155

P8X32A-D40

P8X32A-D40

Parallax, Inc.

IC MCU 32BIT 32KB ROM 40DIP

795

P8X32A-Q44

P8X32A-Q44

Parallax, Inc.

IC MCU 32BIT 32KB ROM 44LQFP

2421

PBASIC1/P

PBASIC1/P

Parallax, Inc.

IC MCU BASIC STAMP 1 INTER CHIP

0

PBASIC1XT/SS

PBASIC1XT/SS

Parallax, Inc.

IC MCU BASIC STAMP 1 INTER CHIP

0

PBASIC2CI/SS

PBASIC2CI/SS

Parallax, Inc.

IC MCU BS2 INTERPRTR CHIP 28SSOP

0

SX52BD

SX52BD

Parallax, Inc.

IC MCU 8BIT 6KB FLASH 52QFP

0

SX48BD-G

SX48BD-G

Parallax, Inc.

IC MCU 8BIT 6KB FLASH 48LQFP

0

PBASIC48W/P40

PBASIC48W/P40

Parallax, Inc.

IC MCU BS2P40 INTERPR CHIP 48SMD

0

SX20AC/SS-G

SX20AC/SS-G

Parallax, Inc.

IC MCU 8BIT 3KB FLASH 20SSOP

0

SX28AC/SS

SX28AC/SS

Parallax, Inc.

IC MCU 8BIT 3KB FLASH 28SSOP

0

SX48BD

SX48BD

Parallax, Inc.

IC MCU 8BIT 6KB FLASH 48LQFP

0

SX28AC/SS-G

SX28AC/SS-G

Parallax, Inc.

IC MCU 8BIT 3KB FLASH 28SSOP

0

PBASIC48W/PX24

PBASIC48W/PX24

Parallax, Inc.

IC MCU 48TQFP

0

SX28AC/DP-G

SX28AC/DP-G

Parallax, Inc.

IC MCU 8BIT 3KB FLASH 28DIP

0

PBASIC2E/P

PBASIC2E/P

Parallax, Inc.

IC MCU BASIC STAMP 2E INTER CHIP

0

PBASIC2SX/P

PBASIC2SX/P

Parallax, Inc.

IC MCU BASIC STAMP 2SX INT CHIP

0

PBASIC2E/SS

PBASIC2E/SS

Parallax, Inc.

IC MCU BS2 INTERPRET CHIP 28SSOP

0

PBASIC48W/P24

PBASIC48W/P24

Parallax, Inc.

IC MCU BS2P24 INTERPR CHIP 48SMD

0

Embedded - Microcontrollers

1. Overview

Embedded microcontrollers (MCUs) are compact integrated circuits designed to control specific functions in embedded systems. They combine processing cores, memory, and peripheral interfaces into a single chip, enabling efficient control in applications ranging from consumer electronics to industrial automation. Their importance lies in enabling smart, connected, and autonomous systems in modern technology ecosystems.

2. Main Types and Functional Classification

Type Functional Characteristics Application Examples
General-Purpose MCUs Balanced performance, basic peripherals (timers, UART) Home appliances, simple sensors
Low-Power MCUs Optimized for energy efficiency, sleep modes Wearable devices, IoT edge nodes
High-Performance MCUs 32/64-bit cores, DSP capabilities, high-speed interfaces Industrial automation, automotive systems
Automotive MCUs ISO 26262 certified, extended temperature range Engine control units, ADAS

3. Structure and Components

Typical microcontroller architecture includes:

  • CPU core (e.g., ARM Cortex-M, RISC-V)
  • Memory (Flash, SRAM, EEPROM)
  • Peripherals (GPIO, SPI, I2C, ADC/DAC)
  • Real-time clock (RTC)
  • Power management unit
  • Communication interfaces (CAN, Ethernet, USB)

Physical packaging ranges from 8-pin DIP to 200+ pin BGA for complex applications.

4. Key Technical Specifications

Parameter Description
Clock Speed Determines processing capability (1 MHz - 1 GHz)
Memory Size Flash (code storage) and RAM (data processing)
Power Consumption Active/current sleep mode current draw
I/O Lines Number and type of programmable GPIO
Operating Temperature Industrial (-40 C to 85 C) or automotive (-40 C to 125 C)

5. Application Areas

  • Consumer Electronics: Smart home devices, wearables
  • Industrial: Motor control, factory automation
  • Automotive: Body control modules, EV battery management
  • Medical: Portable diagnostic equipment, infusion pumps
  • IoT: Wireless sensor networks, edge AI nodes

6. Leading Manufacturers and Products

Manufacturer Headquarters Representative Products
Texas Instruments USA MSP430FR5994 (low-power sensing)
STMicroelectronics Switzerland STM32H7 (high-performance)
Microchip Technology USA PIC32MZ (32-bit general purpose)
NXP Semiconductors Netherlands Kinetis K82 (automotive-grade)
Infineon Technologies Germany Traveo S6J3 (automotive graphics)

7. Selection Recommendations

Key considerations:

  1. Match core architecture to computational needs
  2. Verify peripheral compatibility with sensors/actuators
  3. Check temperature/ruggedness ratings
  4. Evaluate software ecosystem (RTOS support, middleware)
  5. Consider long-term supply stability

Example: For a battery-powered IoT sensor node, prioritize ultra-low power MCUs like the EFR32MG21 with integrated wireless capabilities.

8. Industry Trends

  • Integration of AI acceleration (e.g., Arm Ethos-U NPU)
  • Edge computing focus with on-chip machine learning
  • Enhanced security features (TrustZone, secure boot)
  • Sub-1V operation for energy harvesting applications
  • Growth of heterogeneous multi-core MCUs
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