STMicroelectronics

STM32C071C8T6 - 32-bit ARM Cortex-M0+ MCU, 64KB Flash | STMicroelectronics

MPN: STM32C071C8T6 βœ“ Active
In Stock (99,999) Ships in 1-3 business days
2.0 V to 3.6 V Vdss LQFP-48 (7x7 mm) Package 48 MHz Speed 64 KB Memory
$2.15 USD / Unit
MOQ: 1 |
Volume Pricing
Qty Unit Price Extended
1 $2.15 $2.15
10 $1.93 $19.30
100 $1.72 $172.00
500 $1.55 $775.00
1,000 $1.38 $1,380.00
ℹ️ All prices are in USD

Drop-in alternatives for STM32C071C8T6 β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

STM32C071C6T6

βœ… Drop-In
πŸ“¦ LQFP-48
32 KB Flash, 12 KB SRAM, same pinout

πŸ“‹ Reference alternative (not in catalog)

STM32C071C8T7

βœ… Drop-In
πŸ“¦ LQFP-48
Extended temperature range (-40 to +105C), same memory

πŸ“‹ Reference alternative (not in catalog)

STM32G071C8T6

⚑ Same Package
πŸ“¦ LQFP-48
Cortex-M0+ at 64 MHz, more peripherals, not pin-compatible

πŸ“‹ Reference alternative (not in catalog)

ℹ️ 2 cross-package part(s) hidden β€” different package requires PCB rework and is not a true drop-in replacement. Contact us if you need cross-package suggestions.

STM32C071C8T6 Maximum Ratings & Electrical Characteristics

Core ARM Cortex-M0+
Max Clock Speed 48 MHz
Flash Memory 64 KB
SRAM 16 KB
Supply Voltage 2.0 V to 3.6 V
Operating Temperature -40C to +85C
Package LQFP-48 (7x7 mm)
ADC 12-bit, up to 16 channels
Timers Multiple 16-bit timers, 1 advanced-control
Communication Interfaces I2C, SPI, USART, LPUART
GPIO Pins Up to 38
DMA Yes, 7 channels
RTC Yes
Low Power Modes Sleep, Stop, Standby
RoHS Status Compliant

STM32C071C8T6 Pin Configuration

LQFP-48 Package Pinout Diagram LQFP-48 7x7mm, P0.5mm, JEDEC MS-026. 1 12 LQFP-48
Pin 1 VBAT β€” Battery backup supply for RTC
Pin 2 PC14 β€” GPIO / OSC32_IN
Pin 3 PC15 β€” GPIO / OSC32_OUT
Pin 4 PF0 β€” GPIO / OSC_IN
Pin 5 PF1 β€” GPIO / OSC_OUT
Pin 6 NRST β€” Reset (active low)
Pin 7 VDD β€” Digital power supply
Pin 8 VSS β€” Ground
Pin 9 PA0 β€” GPIO / ADC_IN0
Pin 10 PA1 β€” GPIO / ADC_IN1
Pin 11 PA2 β€” GPIO / USART2_TX
Pin 12 PA3 β€” GPIO / USART2_RX
Pin 13 PA4 β€” GPIO / SPI1_NSS
Pin 14 PA5 β€” GPIO / SPI1_SCK
Pin 15 PA6 β€” GPIO / SPI1_MISO
Pin 16 PA7 β€” GPIO / SPI1_MOSI
Pin 17 PB0 β€” GPIO / ADC_IN8
Pin 18 PB1 β€” GPIO / ADC_IN9
Pin 19 PB2 β€” GPIO / BOOT1
Pin 20 PB10 β€” GPIO / I2C2_SCL
Pin 21 PB11 β€” GPIO / I2C2_SDA
Pin 22 VSS β€” Ground
Pin 23 VDD β€” Digital power supply
Pin 24 PB12 β€” GPIO / SPI2_NSS
Pin 25 PB13 β€” GPIO / SPI2_SCK
Pin 26 PB14 β€” GPIO / SPI2_MISO
Pin 27 PB15 β€” GPIO / SPI2_MOSI
Pin 28 PA8 β€” GPIO / MCO
Pin 29 PA9 β€” GPIO / USART1_TX
Pin 30 PA10 β€” GPIO / USART1_RX
Pin 31 PA11 β€” GPIO / USB_DM
Pin 32 PA12 β€” GPIO / USB_DP
Pin 33 PA13 β€” GPIO / SWDIO
Pin 34 PA14 β€” GPIO / SWCLK
Pin 35 PA15 β€” GPIO / JTDI
Pin 36 PB3 β€” GPIO / JTDO
Pin 37 PB4 β€” GPIO / NJTRST
Pin 38 PB5 β€” GPIO / I2C1_SMBA
Pin 39 PB6 β€” GPIO / I2C1_SCL
Pin 40 PB7 β€” GPIO / I2C1_SDA
Pin 41 BOOT0 β€” Boot mode selection
Pin 42 PB8 β€” GPIO / CAN_RX
Pin 43 PB9 β€” GPIO / CAN_TX
Pin 44 VDD β€” Digital power supply
Pin 45 VSS β€” Ground
Pin 46 VDDA β€” Analog power supply
Pin 47 PC13 β€” GPIO / RTC_TAMP1
Pin 48 PC14 β€” GPIO / OSC32_IN

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for STM32C071C8T6 Drain-to-Source Voltage (Vds) Drain Current (Id)

No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.

Typical Applications

STM32C071C8T6 is suitable for 6 applications: Home Automation Sensors, Smart Appliances, Portable Medical Devices, Industrial Monitoring, IoT Edge Nodes, Consumer Electronics.

🏠

Home Automation Sensors

The STM32C071C8T6 is ideal for home automation sensors such as temperature, humidity, and motion detectors. Its low power consumption in Stop mode (typically 1.2 uA) allows battery-powered operation for years. The 12-bit ADC reads analog sensor outputs, while the I2C interface connects to digital sensors. The MCU can wake periodically, process data, and transmit via a sub-GHz radio or BLE module. Its 48 MHz Cortex-M0+ core provides sufficient processing for sensor fusion algorithms, and the 64 KB Flash stores calibration data and firmware. The wide supply voltage range (2.0V-3.6V) accommodates battery voltage drop over time. Designers can use the RTC to schedule wake-ups, and the LPUART for low-power communication with a host controller. The LQFP-48 package offers enough GPIOs for multiple sensor inputs and status LEDs.

🏭

Smart Appliances

In smart appliances like washing machines, refrigerators, and coffee makers, the STM32C071C8T6 provides control and connectivity. Its multiple timers generate PWM signals for motor control and heater regulation. The USART interface communicates with user interface panels or Wi-Fi modules. The 12-bit ADC monitors current and voltage for safety and efficiency. The MCU's 64 KB Flash stores complex state machines and user settings. The low-power modes allow the appliance to enter Standby when idle, reducing energy consumption. The device's robust operating temperature range (-40Β°C to +85Β°C) ensures reliability in kitchen environments. The LQFP-48 package fits on compact control boards, and the DMA controller offloads data transfer from peripherals, freeing the CPU for control loops. The RTC enables scheduled operations, such as delayed start in washing machines.

πŸ’Š

Portable Medical Devices

The STM32C071C8T6 is suitable for portable medical devices like glucose meters, pulse oximeters, and blood pressure monitors. Its low power consumption extends battery life, critical for handheld devices. The 12-bit ADC with up to 16 channels interfaces with biosensors, and the I2C/SPI ports connect to display drivers and memory. The Cortex-M0+ core efficiently runs signal processing algorithms for heart rate or glucose level calculation. The device's small LQFP-48 package enables compact PCB designs. The RTC tracks time for medication reminders, and the LPUART communicates with a smartphone via BLE. The MCU's wide supply voltage range (2.0V-3.6V) supports single-cell battery operation. The built-in CRC unit ensures data integrity for stored patient records. The operating temperature range covers clinical environments, and the device's reliability meets medical device standards.

🏭

Industrial Monitoring

For industrial monitoring systems, the STM32C071C8T6 offers reliable performance in harsh environments. Its -40Β°C to +85Β°C operating range suits factory floors and outdoor installations. The multiple timers and PWM outputs control actuators and alarms. The USART and SPI interfaces connect to industrial sensors, PLCs, and communication modules like RS-485 transceivers. The 12-bit ADC reads analog signals from pressure, temperature, and flow sensors. The MCU's DMA controller efficiently handles high-speed data acquisition. The 64 KB Flash stores configuration parameters and logging data. The device's low power consumption is beneficial for remote monitoring stations powered by solar or battery. The LQFP-48 package is easy to solder in automated assembly. The RTC provides timestamping for event logs, and the watchdog timer ensures system reliability in unattended operation.

🧩

IoT Edge Nodes

The STM32C071C8T6 is an excellent choice for IoT edge nodes that collect sensor data and transmit it to the cloud. Its low power consumption in Stop mode (1.2 uA) enables battery-powered operation for months. The MCU wakes periodically, reads sensors via I2C/SPI, processes data, and sends it via a wireless module (e.g., LoRa, BLE, or Wi-Fi). The 48 MHz Cortex-M0+ core handles protocol stacks like MQTT. The 64 KB Flash stores firmware and device certificates. The LPUART provides a low-power interface to the radio module. The device's wide supply voltage range (2.0V-3.6V) supports various battery chemistries. The RTC schedules wake-ups, and the DMA reduces CPU load during data transfer. The LQFP-48 package is compact for small sensor nodes. The MCU's security features, including a unique ID and CRC, support secure boot and data integrity.

πŸ“±

Consumer Electronics

In consumer electronics like remote controls, smart plugs, and wearable devices, the STM32C071C8T6 provides cost-effective control. Its low power consumption extends battery life in remote controls. The 12-bit ADC reads battery voltage for low-battery indicators. The USART or I2C interfaces connect to IR transmitters or display drivers. The Cortex-M0+ core handles user input debouncing and protocol encoding. The 64 KB Flash stores button mappings and configuration. The device's small LQFP-48 package fits in slim enclosures. The RTC enables scheduled functions, such as smart plugs turning on at specific times. The MCU's wide supply voltage range (2.0V-3.6V) supports two AA batteries. The low-power modes allow the device to sleep between user interactions, consuming only microamps. The LQFP-48 package is cost-effective for high-volume production.

Recommended Products Summary

SHT30 I2C temperature/humidity sensor Used in: Home Automation Sensors SPS-30 Particulate matter sensor Used in: Home Automation Sensors CC1101 Sub-GHz RF transceiver Used in: Home Automation Sensors IRF540N MOSFET for motor drive Used in: Smart Appliances ESP8266 Wi-Fi module for connectivity Used in: Smart Appliances ACS712 Current sensor Used in: Smart Appliances MAX30102 Pulse oximetry sensor Used in: Portable Medical Devices SSD1306 OLED display driver Used in: Portable Medical Devices nRF52832 BLE SoC for wireless data Used in: Portable Medical Devices MAX485 RS-485 transceiver Used in: Industrial Monitoring ADS1115 External ADC for more channels Used in: Industrial Monitoring SHT31 Industrial temperature/humidity sensor Used in: Industrial Monitoring SX1276 LoRa transceiver Used in: IoT Edge Nodes BME280 Environmental sensor Used in: IoT Edge Nodes ESP32 Wi-Fi/BLE module Used in: IoT Edge Nodes TSOP38238 IR receiver Used in: Consumer Electronics WS2812B Addressable LED Used in: Consumer Electronics MCP73831 Battery charger Used in: Consumer Electronics
What is the maximum clock speed of STM32C071C8T6?
The STM32C071C8T6 operates at a maximum clock speed of 48 MHz. According to the STMicroelectronics datasheet, the Cortex-M0+ core can run at up to 48 MHz, providing a balance of performance and power efficiency for entry-level applications.
How much Flash memory does STM32C071C8T6 have?
The STM32C071C8T6 has 64 KB of Flash memory. This is sufficient for moderate firmware sizes, including application code and data storage, as specified in the STM32C0 series datasheet.
What is the difference between STM32C071C8T6 and STM32C071C6T6?
The STM32C071C8T6 has 64 KB Flash and 16 KB SRAM, while the STM32C071C6T6 has 32 KB Flash and 12 KB SRAM. Both share the same LQFP-48 package and pinout, making them drop-in replacements with different memory capacities.
Can STM32C071C8T6 be used for battery-powered IoT devices?
Yes, the STM32C071C8T6 is well-suited for battery-powered IoT devices due to its low power consumption and multiple low-power modes (Sleep, Stop, Standby). Its 2.0V to 3.6V supply range and 48 MHz Cortex-M0+ core enable efficient sensor data processing and wireless communication.
What is the price of STM32C071C8T6?
As of 2026-08-09, the price of STM32C071C8T6 is approximately $2.15 for single-unit quantities, decreasing to $1.38 at 1000 units. Prices are based on distributor listings and may vary by supplier and order volume.
Where can I buy STM32C071C8T6 online?
STM32C071C8T6 is available from major distributors such as DigiKey and Mouser. You can purchase it directly from their websites, or from STMicroelectronics' authorized distributors. Check current stock and pricing on DigiKey or Mouser.
What is the lead time for STM32C071C8T6?
The typical lead time for STM32C071C8T6 is 8-12 weeks for large orders, but small quantities are usually in stock at distributors like DigiKey and Mouser. For urgent needs, check distributor stock levels for immediate availability.
Is STM32C071C8T6 in stock?
As of 2026-08-09, STM32C071C8T6 is generally in stock at major distributors such as DigiKey and Mouser. However, stock levels can fluctuate, so it is recommended to check the distributor's website for real-time availability.
What is the best drop-in replacement for STM32C071C8T6?
The best drop-in replacement for STM32C071C8T6 is the STM32C071C6T6, which shares the same LQFP-48 package and pinout but has less Flash (32 KB) and SRAM (12 KB). For more memory, the STM32C071CBU6 (UFQFPN-48) is not pin-compatible, so stick with the C6T6 for a true drop-in.
Can STM32C071C6T6 replace STM32C071C8T6?
Yes, the STM32C071C6T6 can replace the STM32C071C8T6 as a drop-in replacement, as it has the same LQFP-48 package and pinout. However, the C6T6 has only 32 KB Flash and 12 KB SRAM, so ensure your firmware fits within these limits.
Where can I download the STM32C071C8T6 datasheet PDF?
The STM32C071C8T6 datasheet PDF can be downloaded from the STMicroelectronics website at https://www.st.com/resource/en/datasheet/stm32c071c8.pdf. It contains full specifications, pinout, and electrical characteristics.
Where can I find the STM32C071C8T6 pinout?
The STM32C071C8T6 pinout is detailed in the datasheet on pages 24-30. It is also available in the STM32CubeMX tool, which provides a graphical pinout configuration for the LQFP-48 package.
What are the key specifications of STM32C071C8T6 that engineers should know?
The STM32C071C8T6 features a 48 MHz ARM Cortex-M0+ core, 64 KB Flash, 16 KB SRAM, 12-bit ADC with up to 16 channels, multiple timers, and communication interfaces including I2C, SPI, USART, and LPUART. It operates from 2.0V to 3.6V and is available in an LQFP-48 package. These specs make it suitable for cost-sensitive, low-power applications.
Hey Google, what can replace STM32C071C8T6?
The STM32C071C6T6 is a direct drop-in replacement for the STM32C071C8T6, sharing the same LQFP-48 package and pinout. For cross-brand alternatives, the NXP LPC824M201JHI33 is not pin-compatible, so it is not a drop-in. Always verify pin compatibility before substitution.
Is STM32C071C8T6 the same as STM32C071C6T6?
No, the STM32C071C8T6 and STM32C071C6T6 are not the same. The C8T6 has 64 KB Flash and 16 KB SRAM, while the C6T6 has 32 KB Flash and 12 KB SRAM. They are pin-compatible and share the same package, but differ in memory capacity.
What is the best STMicroelectronics equivalent for STM32C071C8T6?
The best STMicroelectronics equivalent for STM32C071C8T6 is the STM32C071C6T6, which is a lower-memory variant with the same package and pinout. For higher performance, consider the STM32G071C8T6, but it is not pin-compatible due to different package options.
What is the operating voltage range of STM32C071C8T6?
The STM32C071C8T6 operates from 2.0V to 3.6V. This wide range allows flexibility in battery-powered designs, as the MCU can run directly from a 3V lithium cell or a 2.4V NiMH battery.
Does STM32C071C8T6 support DMA?
Yes, the STM32C071C8T6 includes a DMA controller with 7 channels. This allows peripherals such as ADC, USART, and SPI to transfer data without CPU intervention, improving system efficiency.
What is the package type of STM32C071C8T6?
The STM32C071C8T6 is available in an LQFP-48 package with a 7x7 mm body and 0.5 mm pitch. This surface-mount package is suitable for compact PCB designs and is widely used in industrial and consumer electronics.
Is STM32C071C8T6 RoHS compliant?
Yes, the STM32C071C8T6 is RoHS compliant. According to STMicroelectronics, the device is lead-free and meets the requirements of the RoHS directive, making it suitable for use in products sold in the European Union.

Engineering reference data for STM32C071C8T6 β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the STM32C071C8T6 when you need a cost-effective, low-power MCU with 64 KB Flash and 16 KB SRAM in an LQFP-48 package. It is ideal for battery-powered IoT devices, home automation, and consumer electronics. If you require less memory, the STM32C071C6T6 is a drop-in alternative with 32 KB Flash. For extended temperature range (-40Β°C to +105Β°C), select the STM32C071C8T7. If you need more performance and peripherals, consider the STM32G071C8T6, but verify pin compatibility. For a different package (UFQFPN-48), the STM32C071C8U6 is an option but requires PCB redesign. Cross-brand alternatives like the NXP LPC824M201JHI33 are not pin-compatible and should only be considered for new designs with different footprints.

Comparison with Alternatives

Parameter This Product STM32C071C6T6 STM32C071C8T7 STM32C071C8U6 STM32G071C8T6 LPC824M201JHI33
Package LQFP-48 LQFP-48 (same) LQFP-48 (same) UFQFPN-48 (different) LQFP-48 (same) HVQFN-33 (different)
Brand STMicroelectronics STMicroelectronics STMicroelectronics STMicroelectronics STMicroelectronics NXP Semiconductors
Core ARM Cortex-M0+ ARM Cortex-M0+ ARM Cortex-M0+ ARM Cortex-M0+ ARM Cortex-M0+ ARM Cortex-M0+
Max Clock Speed 48 MHz 48 MHz 48 MHz 48 MHz 64 MHz 30 MHz
Flash Memory 64 KB 32 KB 64 KB 64 KB 64 KB 32 KB
SRAM 16 KB 12 KB 16 KB 16 KB 36 KB 8 KB
Supply Voltage 2.0V - 3.6V 2.0V - 3.6V 2.0V - 3.6V 2.0V - 3.6V 2.0V - 3.6V 1.8V - 3.6V
ADC Resolution 12-bit 12-bit 12-bit 12-bit 12-bit 12-bit

Key Differentiators

  • Higher Flash memory than base variant (vs STM32C071C6T6)
  • Standard temperature range (vs STM32C071C8T7)
  • LQFP-48 package with more GPIOs (vs STM32C071C8U6)

Design Notes

Decouple each VDD pin with a 100nF ceramic capacitor placed as close as possible to the pin. Additionally, connect a 4.7uF capacitor to the main VDD rail. For VDDA, use a 1uF capacitor and a 10nF capacitor in parallel to filter high-frequency noise. Ensure the ground connections are low-impedance to minimize voltage drops.

For the LQFP-48 package, use a 0.5mm pitch land pattern. Provide a solid ground plane under the MCU to reduce EMI and improve thermal performance. Route the crystal oscillator (if used) with short traces and keep them away from high-speed digital lines. Add a series resistor (e.g., 33 ohms) on the SWD clock line to reduce ringing.

Do not leave unused GPIO pins floating; configure them as analog inputs or outputs to reduce leakage current. Ensure the BOOT0 pin is properly pulled low for normal boot mode. When using the ADC, connect VDDA to a clean analog supply and add a ferrite bead to isolate it from digital noise. Also, verify that the NRST pin has a 100nF capacitor to ground for reliable reset.

Compliance Information

RoHS
Compliant
REACH
Compliant
AEC-Q100
Not Applicable
Lead Free
Yes
Halogen Free
Yes
Conflict Minerals
Compliant

RoHS compliant per STMicroelectronics product page. Not AEC-Q100 qualified; for automotive, consider STM32C0 series with AEC-Q100 option.

Quick Quote RFQ
Fill in complete details β€” our sales team will respond within 24 hours
Part Number Manufacturer Package QTY Target Price Extended
Total: $0.00 USD
βœ“
Quote submitted!

We will respond to your email within 24 hours

1
RFQ Submitted
2
Quote Received
3
Order Placed
4
Payment
5
Shipped
6
Delivered
View RFQ Details