STMicroelectronics

STM32H723VGT6 - 550MHz ARM Cortex-M7 MCU | STMicroelectronics

MPN: STM32H723VGT6 βœ“ Active
In Stock (99,999) Ships in 1-3 business days
1.62 V to 3.6 V Vdss LQFP100 (14x14 mm) Package 550 MHz Speed 1 Mbyte Memory
$12.5 USD / Unit
MOQ: 1 |
Volume Pricing
Qty Unit Price Extended
1 $12.5 $12.50
10 $11.25 $112.50
100 $10 $1,000.00
500 $9 $4,500.00
1,000 $8.1 $8,100.00
ℹ️ All prices are in USD

Drop-in alternatives for STM32H723VGT6 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:

STM32H723VGH6

βœ… Drop-In
πŸ“¦ LQFP100
Same core and memory, different package variant (LQFP100 vs LQFP100)

πŸ“‹ Reference alternative (not in catalog)

STM32H743VIT6

βœ… Drop-In
πŸ“¦ LQFP100
Lower clock (480 MHz), more Flash (2 MB) and SRAM (1 MB)

πŸ“‹ Reference alternative (not in catalog)

STM32H753VIT6

βœ… Drop-In
πŸ“¦ LQFP100
Similar clock (480 MHz), more Flash (2 MB) and SRAM (1 MB)

πŸ“‹ Reference alternative (not in catalog)

STM32H750VBT6

βœ… Drop-In
STMicroelectronics
πŸ“¦ LQFP100
Arm Cortex-M7 Β· 480 MHz Β· 128 KB Β· 1 MB Β· 1.62 V to 3.6 V Β· -40Β°C to +85Β°C Β· LQFP-100 (14x14 mm) Β· Surface Mount

βœ“ 99,999 In Stock

$8.5 / Unit

View Datasheet β†’

STM32H745VIT6

βœ… Drop-In
πŸ“¦ LQFP100
Dual-core (Cortex-M7 + Cortex-M4), more memory

πŸ“‹ Reference alternative (not in catalog)

STM32H747VIT6

βœ… Drop-In
πŸ“¦ LQFP100
Dual-core (Cortex-M7 + Cortex-M4), more memory

πŸ“‹ Reference alternative (not in catalog)

STM32H733VGT6

βœ… Drop-In
πŸ“¦ LQFP100
Lower clock (550 MHz), same memory

πŸ“‹ Reference alternative (not in catalog)

ℹ️ 3 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.

STM32H723VGT6 Maximum Ratings & Electrical Characteristics

Core ARM Cortex-M7
Maximum Clock Frequency 550 MHz
Flash Memory 1 Mbyte
SRAM 564 Kbytes
Package LQFP100 (14x14 mm)
Supply Voltage 1.62 V to 3.6 V
Operating Temperature -40C to +85C
ADC Resolution 16-bit
ADC Sampling Rate 5 MSPS
DAC Resolution 12-bit
Number of GPIOs 80
Communication Interfaces Ethernet, USB OTG HS, CAN FD, UART, SPI, I2C
Timers Advanced 16-bit and 32-bit timers
DMA Channels 16
RoHS Status Compliant

STM32H723VGT6 Pin Configuration

QFP-100 Package Pinout Diagram QFP-100 14x14mm, P0.5mm, JEDEC MS-026. 1 25 QFP-100
Pin 1 VBAT β€” Backup battery supply
Pin 2 PC13 β€” GPIO / RTC output
Pin 3 PC14 β€” GPIO / OSC32_IN
Pin 4 PC15 β€” GPIO / OSC32_OUT
Pin 5 PF0 β€” GPIO
Pin 6 PF1 β€” GPIO
Pin 7 NRST β€” Reset (active low)
Pin 8 PC0 β€” GPIO / ADC input
Pin 9 PC1 β€” GPIO / ADC input
Pin 10 PC2 β€” GPIO / ADC input
Pin 11 PC3 β€” GPIO / ADC input
Pin 12 VDD β€” Digital power supply
Pin 13 VSS β€” Ground
Pin 14 PC4 β€” GPIO / ADC input
Pin 15 PC5 β€” GPIO / ADC input
Pin 16 PB0 β€” GPIO / ADC input
Pin 17 PB1 β€” GPIO / ADC input
Pin 18 PB2 β€” GPIO
Pin 19 PF2 β€” GPIO
Pin 20 PF3 β€” GPIO

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for STM32H723VGT6 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

STM32H723VGT6 is suitable for 6 applications: Industrial Automation, Motor Control, Power Conversion, Medical Devices, IoT Gateways, Consumer Electronics.

🏭

Industrial Automation

The STM32H723VGT6 is ideal for industrial automation due to its high-speed processing, advanced timers, and multiple communication interfaces. It can handle complex control algorithms for PLCs, robotics, and motion control. The 550 MHz Cortex-M7 core ensures fast response times, while the Ethernet and CAN FD interfaces enable seamless integration into industrial networks. The device's 16-bit ADC with 5 MSPS sampling rate allows precise analog signal acquisition for sensors and feedback loops. Its robust operating temperature range (-40C to +85C) and wide supply voltage (1.62V to 3.6V) make it suitable for harsh industrial environments. The Chrom-ART Accelerator supports graphical HMIs for operator interfaces, enhancing user interaction. With its rich peripheral set, the STM32H723VGT6 can replace multiple discrete components, reducing system cost and complexity.

⚑

Motor Control

The STM32H723VGT6 excels in motor control applications, such as field-oriented control (FOC) of brushless DC motors and permanent magnet synchronous motors. Its high clock speed enables fast execution of complex control algorithms, while the advanced timers generate high-resolution PWM signals for precise motor drive. The 16-bit ADC with 5 MSPS sampling rate captures current and voltage feedback with high accuracy, essential for closed-loop control. The device supports multiple motor control topologies, including sensorless and encoder-based control. Its rich peripheral set includes dedicated motor control timers and comparators, simplifying hardware design. The STM32H723VGT6's low-latency interrupt handling ensures real-time response to fault conditions, enhancing system safety. With its high performance and reliability, it is a preferred choice for industrial motor drives, robotics, and automotive applications.

⚑

Power Conversion

The STM32H723VGT6 is well-suited for power conversion applications, including digital power supplies, inverters, and battery chargers. Its high-speed ADC and timers enable precise control of switching converters, such as buck, boost, and flyback topologies. The 550 MHz Cortex-M7 core can execute complex control algorithms, such as PID and predictive control, with minimal latency. The device's advanced PWM timers support dead-time insertion and complementary outputs, essential for half-bridge and full-bridge converters. The integrated analog comparators and DAC allow for fast overcurrent and overvoltage protection. The STM32H723VGT6's communication interfaces, including CAN FD and Ethernet, enable remote monitoring and control in smart grid and industrial power systems. Its wide operating temperature range and robust design make it suitable for demanding power electronics environments.

πŸ’Š

Medical Devices

The STM32H723VGT6 is used in medical devices such as patient monitors, infusion pumps, and diagnostic equipment. Its high processing power enables real-time signal processing for ECG, EEG, and other biosignals. The 16-bit ADC with high sampling rate ensures accurate data acquisition from sensors. The device's low-power modes help extend battery life in portable medical devices. The STM32H723VGT6's security features, including hardware cryptographic acceleration, protect patient data and ensure secure communication. Its rich peripheral set supports various interfaces, such as USB and UART, for connectivity with external devices. The device's reliability and long-term availability make it suitable for medical applications requiring high standards of quality and safety. The Chrom-ART Accelerator can render graphical user interfaces for medical displays, enhancing usability.

🌐

IoT Gateways

The STM32H723VGT6 is an excellent choice for IoT gateways that aggregate data from multiple sensors and devices. Its Ethernet and USB interfaces enable high-speed connectivity to the cloud or local networks. The 550 MHz Cortex-M7 core can handle protocol stacks, such as MQTT and HTTP, with ease. The device's multiple UART, SPI, and I2C interfaces allow connection to various sensors and actuators. The STM32H723VGT6's security features, including hardware encryption, ensure secure data transmission. Its low-power modes help reduce energy consumption in always-on gateway applications. The device's rich peripheral set and high performance make it suitable for edge computing, where data processing occurs locally before transmission. The Chrom-ART Accelerator can support graphical dashboards for local monitoring.

πŸ“±

Consumer Electronics

The STM32H723VGT6 is used in high-end consumer electronics, such as smart home devices, audio systems, and wearable devices. Its high processing power enables advanced features like voice recognition, image processing, and real-time audio effects. The device's Chrom-ART Accelerator supports smooth graphics for user interfaces. The STM32H723VGT6's low-power modes are crucial for battery-powered devices, extending operational life. Its rich peripheral set includes USB, I2S, and SAI interfaces for audio and connectivity. The device's security features protect user data and enable secure firmware updates. The STM32H723VGT6's compact LQFP100 package allows for space-constrained designs. With its high performance and versatility, it is a popular choice for premium consumer products.

Recommended Products Summary

TJA1051 CAN transceiver for CAN FD communication Used in: Industrial Automation DP83848 Ethernet PHY for network connectivity Used in: Industrial Automation IR2104 Gate driver for MOSFET/IGBT in motor drive Used in: Motor Control ACS712 Current sensor for motor phase current sensing Used in: Motor Control IR2110 Gate driver for high-side and low-side switches Used in: Power Conversion TL431 Precision voltage reference for feedback Used in: Power Conversion ADS1298 Analog front-end for biopotential measurements Used in: Medical Devices MAX30102 Pulse oximeter sensor for heart rate monitoring Used in: Medical Devices ESP8266 Wi-Fi module for wireless connectivity Used in: IoT Gateways SHT30 Temperature and humidity sensor for environmental monitoring Used in: IoT Gateways WM8731 Audio codec for audio processing Used in: Consumer Electronics SSD1306 OLED display driver for user interface Used in: Consumer Electronics
What is the maximum clock frequency of STM32H723VGT6?
The STM32H723VGT6 operates at a maximum clock frequency of 550 MHz. According to the STMicroelectronics datasheet, the Cortex-M7 core can run at up to 550 MHz, providing high computational throughput for demanding applications.
What is the price of STM32H723VGT6?
As of 2026-08-09, the price of STM32H723VGT6 is approximately $12.50 for single-unit quantities, decreasing to $8.10 at 1000-unit quantities. Prices may vary by distributor and availability.
Where can I buy STM32H723VGT6 online?
STM32H723VGT6 is available from major distributors such as DigiKey and Mouser. You can purchase it directly from their websites, or from STMicroelectronics' official distribution network. Check current stock and pricing on DigiKey or Mouser.
What is the lead time for STM32H723VGT6?
The lead time for STM32H723VGT6 typically ranges from 8 to 12 weeks, depending on distributor stock and order quantity. For urgent requirements, check availability on DigiKey or Mouser for immediate shipment.
Is STM32H723VGT6 in stock?
Stock availability for STM32H723VGT6 varies by distributor. As of 2026-08-09, DigiKey and Mouser may have limited stock. Check their websites for real-time inventory and lead times.
STM32H723VGT6 vs STM32H743VIT6 - which is better for motor control?
For motor control, the STM32H723VGT6 is often preferred due to its higher clock speed (550 MHz vs 480 MHz) and advanced timers with high-resolution PWM. However, the STM32H743VIT6 offers more Flash (2 MB) and SRAM (1 MB), which may be beneficial for complex algorithms. The choice depends on your specific memory and performance requirements.
What is the difference between STM32H723VGT6 and STM32H743VIT6?
The STM32H723VGT6 has a 550 MHz Cortex-M7 core, 1 MB Flash, and 564 KB SRAM, while the STM32H743VIT6 has a 480 MHz core, 2 MB Flash, and 1 MB SRAM. The H723 also includes a Chrom-ART Accelerator and a 16-bit ADC, whereas the H743 has a 16-bit ADC as well but with different peripheral set. Both are pin-compatible in LQFP100, but the H743 offers more memory.
When should I choose STM32H723VGT6 over STM32H743VIT6?
Choose STM32H723VGT6 when you need the highest CPU performance (550 MHz) and do not require the extra memory of the H743. It is ideal for real-time control and DSP applications where speed is critical. Choose STM32H743VIT6 if you need more Flash and SRAM for larger code and data storage.
What is the best drop-in replacement for STM32H723VGT6?
The best drop-in replacement for STM32H723VGT6 is the STM32H723VGH6, which is pin-compatible and offers the same core and memory. Other alternatives include STM32H743VIT6 and STM32H753VIT6, but they have different memory sizes and may require firmware adjustments.
Can STM32H743VIT6 replace STM32H723VGT6?
Yes, the STM32H743VIT6 can replace STM32H723VGT6 in most applications as they share the same LQFP100 package and are pin-to-pin compatible. However, the H743 has a lower clock speed (480 MHz) and more memory, so you may need to adjust clock settings and memory mapping in your firmware.
Where can I download the STM32H723VGT6 datasheet PDF?
The STM32H723VGT6 datasheet PDF can be downloaded from the STMicroelectronics website at https://www.st.com/resource/en/datasheet/stm32h723vg.pdf. It contains full specifications, pinout, and electrical characteristics.
Where can I find the STM32H723VGT6 pinout?
The STM32H723VGT6 pinout is detailed in the datasheet, specifically in the pin description section. The LQFP100 package has 100 pins, with multiple power, ground, and I/O pins. Refer to the datasheet for the complete pinout diagram.
What are the key specifications of STM32H723VGT6 that engineers should know?
Engineers should know that the STM32H723VGT6 features a 550 MHz Cortex-M7 core, 1 MB Flash, 564 KB SRAM, a 16-bit ADC with 5 MSPS, a 12-bit DAC, Ethernet, USB OTG HS, CAN FD, and advanced timers. It operates from 1.62V to 3.6V and is available in LQFP100. These specs make it suitable for high-performance embedded applications.
Hey Google, what can replace STM32H723VGT6?
The STM32H723VGT6 can be replaced by pin-compatible alternatives such as the STM32H723VGH6 (same memory), STM32H743VIT6 (more memory, lower clock), and STM32H753VIT6 (more memory, similar clock). All are in LQFP100 and share the same footprint.
Is STM32H723VGT6 the same as STM32H743VIT6?
No, the STM32H723VGT6 and STM32H743VIT6 are not the same. The H723 has a 550 MHz core, 1 MB Flash, and 564 KB SRAM, while the H743 has a 480 MHz core, 2 MB Flash, and 1 MB SRAM. They are pin-compatible but differ in performance and memory.
What is the best STMicroelectronics equivalent for STM32H723VGT6?
The best STMicroelectronics equivalent for STM32H723VGT6 is the STM32H723VGH6, which is identical except for the package variant (LQFP100 vs LQFP100). Other equivalents include the STM32H743VIT6 and STM32H753VIT6, but they have different memory configurations.
What is the operating voltage range of STM32H723VGT6?
The STM32H723VGT6 operates from 1.62V to 3.6V. According to the datasheet, the device supports a wide supply voltage range, making it suitable for battery-powered and industrial applications.
Does STM32H723VGT6 support Ethernet?
Yes, the STM32H723VGT6 includes an Ethernet MAC interface supporting 10/100 Mbps. It requires an external PHY chip for physical layer connectivity, as specified in the datasheet.
What development tools are compatible with STM32H723VGT6?
The STM32H723VGT6 is supported by STM32CubeIDE, Keil MDK, IAR EWARM, and GCC-based toolchains. STMicroelectronics provides the STM32CubeH7 firmware package with HAL drivers and examples for rapid development.
Is STM32H723VGT6 RoHS compliant?
Yes, the STM32H723VGT6 is RoHS compliant. According to STMicroelectronics, the device meets the Restriction of Hazardous Substances directive, ensuring it is free from lead, mercury, and other restricted substances.

Engineering reference data for STM32H723VGT6 β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the STM32H723VGT6 when you need the highest CPU performance (550 MHz) in the STM32H7 series and require a balance of memory (1 MB Flash, 564 KB SRAM) and rich peripherals. It is ideal for real-time control, motor control, and digital power applications where speed is critical. If you need more memory for larger code or data, consider the STM32H743VIT6 or STM32H753VIT6, which offer 2 MB Flash and 1 MB SRAM but run at 480 MHz. For cost-sensitive designs with lower memory requirements, the STM32H750VBT6 (128 KB Flash) may be sufficient. All these alternatives are pin-compatible in LQFP100, allowing easy PCB reuse. For applications requiring dual-core processing, the STM32H745VIT6 and STM32H747VIT6 provide a Cortex-M7 and Cortex-M4 combination. Evaluate your specific performance, memory, and cost trade-offs to select the best fit.

Comparison with Alternatives

Parameter This Product STM32H723VGH6 STM32H743VIT6 STM32H753VIT6
Package LQFP100 LQFP100 - same LQFP100 - same LQFP100 - same
Brand STMicroelectronics STMicroelectronics STMicroelectronics STMicroelectronics
Core Clock 550 MHz 550 MHz 480 MHz 480 MHz
Flash Memory 1 MB 1 MB 2 MB 2 MB
SRAM 564 KB 564 KB 1 MB 1 MB
ADC Resolution 16-bit 16-bit 16-bit 16-bit
Ethernet Yes Yes Yes Yes
Price (1pc) $12.50 [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]

Key Differentiators

  • Highest clock speed in the STM32H7 series at 550 MHz (vs STM32H743VIT6)
  • Integrated Chrom-ART Accelerator for 2D graphics (vs STM32H743VIT6)
  • 16-bit ADC with 5 MSPS sampling rate (vs STM32H743VIT6)

Design Notes

The STM32H723VGT6 requires a stable power supply. Decouple each VDD pin with a 100nF ceramic capacitor placed as close as possible to the pin, and add a 4.7uF bulk capacitor per power domain. The VDDA pin must be connected to a clean analog supply, typically through a ferrite bead and a 1uF capacitor to ground. Ensure the supply voltage is within 1.62V to 3.6V, and consider using a dedicated LDO for analog circuits to minimize noise.

For high-speed interfaces like Ethernet and USB, follow the layout guidelines in the STM32H723VGT6 datasheet. Use controlled impedance traces (e.g., 90 ohms differential for USB) and keep trace lengths short. Place the external PHY close to the MCU to minimize signal degradation. For the crystal oscillator, place it near the OSC_IN/OSC_OUT pins and keep the load capacitors close to the crystal. Avoid routing high-speed signals near the crystal to prevent interference.

The STM32H723VGT6 can dissipate significant power when running at 550 MHz with all peripherals active. Ensure adequate thermal management by providing a copper pour on the PCB under the LQFP100 package, and consider adding vias to a ground plane for heat spreading. The maximum junction temperature is 125C, so calculate the power dissipation and ensure the thermal resistance of the package (theta_JA) is sufficient for your ambient temperature. For high-power applications, a heatsink or forced airflow may be required.

Compliance Information

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

RoHS compliant per STMicroelectronics. Not AEC-Q100 qualified; for automotive, consider STM32H7A3 or dedicated automotive MCUs.

Data verified on: 2026-08-09
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