STM32H723VET6 - 550MHz Cortex-M7 MCU with FPU | STMicroelectronics
MPN: STM32H723VET6 ✓ Active| 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 |
Drop-in alternatives for STM32H723VET6 — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool — Select alternative parts for side-by-side comparison:
STM32H723VGT6
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STM32H750VBT6
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View Datasheet →STM32H733VGT6
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View Datasheet →STM32H743VGT6
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STM32H753VGT6
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STM32H750VBT6
✅ Drop-In✓ 99,999 In Stock
$8.5 / Unit
View Datasheet →STM32H733VGT6
✅ Drop-In✓ 99,999 In Stock
$8.1 / Unit
View Datasheet →STM32H743VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H753VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H750VBT6
✅ Drop-In✓ 99,999 In Stock
$8.5 / Unit
View Datasheet →STM32H733VGT6
✅ Drop-In✓ 99,999 In Stock
$8.1 / Unit
View Datasheet →STM32H743VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H753VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H750VBT6
✅ Drop-In✓ 99,999 In Stock
$8.5 / Unit
View Datasheet →STM32H733VGT6
✅ Drop-In✓ 99,999 In Stock
$8.1 / Unit
View Datasheet →STM32H743VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H753VGT6
✅ Drop-In📋 Reference alternative (not in catalog)
STM32H750VBT6
✅ Drop-In✓ 99,999 In Stock
$8.5 / Unit
View Datasheet →STM32H723VET6 Maximum Ratings & Electrical Characteristics
| Core | Arm Cortex-M7 |
| Maximum Clock Speed | 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 +125C |
| ADC Resolution | 16-bit |
| ADC Sample Rate | 3.6 MSPS |
| DAC Resolution | 12-bit |
| Communication Interfaces | Ethernet, USB OTG HS/FS, CAN FD, SPI, I2C, UART, SDMMC |
| Timers | Multiple 16-bit and 32-bit timers |
| Cryptographic Acceleration | Yes (AES, DES, HASH) |
| GPIO Pins | Up to 82 |
| RoHS Status | Compliant |
STM32H723VET6 Pin Configuration
| Pin 1 | PE2 — GPIO or alternate function |
| Pin 2 | PE3 — GPIO or alternate function |
| Pin 3 | PE4 — GPIO or alternate function |
| Pin 4 | PE5 — GPIO or alternate function |
| Pin 5 | PE6 — GPIO or alternate function |
| Pin 6 | VBAT — Battery backup supply |
| Pin 7 | PC13 — GPIO or RTC output |
| Pin 8 | PC14 — GPIO or OSC32_IN |
| Pin 9 | PC15 — GPIO or OSC32_OUT |
| Pin 10 | PF0 — GPIO or alternate function |
| Pin 11 | PF1 — GPIO or alternate function |
| Pin 12 | PF2 — GPIO or alternate function |
| Pin 13 | PF3 — GPIO or alternate function |
| Pin 14 | PF4 — GPIO or alternate function |
| Pin 15 | PF5 — GPIO or alternate function |
| Pin 16 | VSS — Ground |
| Pin 17 | VDD — Power supply |
| Pin 18 | PF6 — GPIO or alternate function |
| Pin 19 | PF7 — GPIO or alternate function |
| Pin 20 | PF8 — GPIO or alternate function |
| Pin 21 | PF9 — GPIO or alternate function |
| Pin 22 | PF10 — GPIO or alternate function |
| Pin 23 | PF11 — GPIO or alternate function |
| Pin 24 | PF12 — GPIO or alternate function |
| Pin 25 | PF13 — GPIO or alternate function |
| Pin 26 | PF14 — GPIO or alternate function |
| Pin 27 | PF15 — GPIO or alternate function |
| Pin 28 | VSS — Ground |
| Pin 29 | VDD — Power supply |
| Pin 30 | PH0 — OSC_IN or GPIO |
| Pin 31 | PH1 — OSC_OUT or GPIO |
| Pin 32 | NRST — Reset |
| Pin 33 | PC0 — GPIO or ADC input |
| Pin 34 | PC1 — GPIO or ADC input |
| Pin 35 | PC2 — GPIO or ADC input |
| Pin 36 | PC3 — GPIO or ADC input |
| Pin 37 | VSSA — Analog ground |
| Pin 38 | VDDA — Analog power supply |
| Pin 39 | PC4 — GPIO or ADC input |
| Pin 40 | PC5 — GPIO or ADC input |
| Pin 41 | PB0 — GPIO or ADC input |
| Pin 42 | PB1 — GPIO or ADC input |
| Pin 43 | PB2 — GPIO or alternate function |
| Pin 44 | PB10 — GPIO or alternate function |
| Pin 45 | PB11 — GPIO or alternate function |
| Pin 46 | VSS — Ground |
| Pin 47 | VDD — Power supply |
| Pin 48 | PB12 — GPIO or alternate function |
| Pin 49 | PB13 — GPIO or alternate function |
| Pin 50 | PB14 — GPIO or alternate function |
| Pin 51 | PB15 — GPIO or alternate function |
| Pin 52 | PD8 — GPIO or alternate function |
| Pin 53 | PD9 — GPIO or alternate function |
| Pin 54 | PD10 — GPIO or alternate function |
| Pin 55 | PD11 — GPIO or alternate function |
| Pin 56 | PD12 — GPIO or alternate function |
| Pin 57 | PD13 — GPIO or alternate function |
| Pin 58 | PD14 — GPIO or alternate function |
| Pin 59 | PD15 — GPIO or alternate function |
| Pin 60 | VSS — Ground |
| Pin 61 | VDD — Power supply |
| Pin 62 | PE7 — GPIO or alternate function |
| Pin 63 | PE8 — GPIO or alternate function |
| Pin 64 | PE9 — GPIO or alternate function |
| Pin 65 | PE10 — GPIO or alternate function |
| Pin 66 | PE11 — GPIO or alternate function |
| Pin 67 | PE12 — GPIO or alternate function |
| Pin 68 | PE13 — GPIO or alternate function |
| Pin 69 | PE14 — GPIO or alternate function |
| Pin 70 | PE15 — GPIO or alternate function |
| Pin 71 | PB3 — GPIO or alternate function |
| Pin 72 | PB4 — GPIO or alternate function |
| Pin 73 | PB5 — GPIO or alternate function |
| Pin 74 | PB6 — GPIO or alternate function |
| Pin 75 | PB7 — GPIO or alternate function |
| Pin 76 | BOOT0 — Boot mode selection |
| Pin 77 | PB8 — GPIO or alternate function |
| Pin 78 | PB9 — GPIO or alternate function |
| Pin 79 | VSS — Ground |
| Pin 80 | VDD — Power supply |
| Pin 81 | PA0 — GPIO or ADC input |
| Pin 82 | PA1 — GPIO or ADC input |
| Pin 83 | PA2 — GPIO or alternate function |
| Pin 84 | PA3 — GPIO or alternate function |
| Pin 85 | PA4 — GPIO or DAC output |
| Pin 86 | PA5 — GPIO or DAC output |
| Pin 87 | PA6 — GPIO or alternate function |
| Pin 88 | PA7 — GPIO or alternate function |
| Pin 89 | PA8 — GPIO or alternate function |
| Pin 90 | PA9 — GPIO or alternate function |
| Pin 91 | PA10 — GPIO or alternate function |
| Pin 92 | PA11 — GPIO or alternate function |
| Pin 93 | PA12 — GPIO or alternate function |
| Pin 94 | PA13 — SWDIO or GPIO |
| Pin 95 | PA14 — SWCLK or GPIO |
| Pin 96 | PA15 — JTDI or GPIO |
| Pin 97 | PC10 — GPIO or alternate function |
| Pin 98 | PC11 — GPIO or alternate function |
| Pin 99 | PC12 — GPIO or alternate function |
| Pin 100 | VSS — Ground |
Safe Operating Area (SOA) & Thermal Characteristics
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
STM32H723VET6 is suitable for 6 applications: Industrial Control Systems, Motor Drives, Audio Processing, IoT Gateways, Power Conversion, Medical Devices.
Industrial Control Systems
The STM32H723VET6 is ideal for industrial control systems due to its high clock speed (550 MHz) and advanced timers. It can handle complex control algorithms, such as PID loops and motion control, with high precision. The device's 16-bit ADC (3.6 MSPS) enables accurate sensor data acquisition, while the CAN FD interface supports robust industrial communication. In a typical PLC (Programmable Logic Controller) application, the STM32H723VET6 manages multiple I/O points, executes real-time control tasks, and communicates with HMI panels via Ethernet. Its wide operating temperature range (-40C to +125C) ensures reliability in harsh factory environments. The cryptographic acceleration unit also enables secure firmware updates and data encryption, which is critical for protecting intellectual property in industrial systems.
Recommended
Motor Drives
The STM32H723VET6 excels in motor drive applications, particularly for field-oriented control (FOC) of brushless DC (BLDC) motors. Its 550 MHz Cortex-M7 core can execute complex FOC algorithms in real time, while the advanced timers generate precise PWM signals for inverter stages. The 16-bit ADC (3.6 MSPS) provides high-resolution current and voltage sensing, essential for accurate torque control. In a typical motor drive, the STM32H723VET6 reads phase currents via shunt resistors, processes them through Clarke and Park transforms, and outputs PWM signals to the gate drivers. The device's high-speed computation reduces control loop latency, improving dynamic response and efficiency. Additionally, the built-in cryptographic unit can secure communication with higher-level controllers, ensuring safe and reliable operation in industrial and automotive environments.
Recommended
Audio Processing
The STM32H723VET6 is well-suited for audio processing applications, such as professional audio mixers, effects processors, and active speakers. Its 550 MHz Cortex-M7 core with double-precision FPU can handle real-time audio DSP algorithms, including filtering, equalization, and dynamic range compression. The device's high-speed ADC and DAC enable high-fidelity audio conversion, while the I2S interface connects to external audio codecs. In a typical audio processor, the STM32H723VET6 receives digital audio via I2S, processes it with custom algorithms, and outputs the result through a DAC. The large SRAM (564 Kbytes) allows buffering of audio samples, reducing latency. The cryptographic unit can also be used for secure audio streaming, protecting content in commercial applications.
Recommended
IoT Gateways
The STM32H723VET6 is an excellent choice for IoT gateways, which require high processing power, connectivity, and security. Its Ethernet MAC and USB OTG interfaces enable seamless connection to local networks and external devices, while the cryptographic acceleration unit ensures secure data transmission. The device can run embedded Linux or a real-time operating system (RTOS) to manage multiple protocols, such as MQTT, CoAP, and HTTP. In a typical IoT gateway, the STM32H723VET6 collects data from various sensors via SPI, I2C, or UART, processes it locally, and forwards it to the cloud via Ethernet or Wi-Fi (through an external module). The high clock speed and large SRAM allow efficient data buffering and protocol handling. The wide operating temperature range makes it suitable for outdoor installations.
Recommended
Power Conversion
The STM32H723VET6 is ideal for power conversion systems, such as digital power supplies, solar inverters, and battery chargers. Its high-speed ADC (3.6 MSPS) enables precise voltage and current monitoring, while the advanced timers generate high-frequency PWM signals for power stage control. The device's 550 MHz core can execute complex control algorithms, such as digital PID and predictive control, to improve efficiency and transient response. In a typical digital power supply, the STM32H723VET6 reads output voltage and current, computes the error, and adjusts the PWM duty cycle to maintain regulation. The cryptographic unit can secure communication with monitoring systems, ensuring safe operation. The wide operating temperature range and robust design make it suitable for industrial and automotive power applications.
Recommended
Medical Devices
The STM32H723VET6 is suitable for medical devices, such as patient monitors, infusion pumps, and diagnostic equipment. Its high processing power enables real-time signal processing, while the 16-bit ADC provides high-resolution data acquisition for vital sign monitoring. The device's cryptographic unit ensures secure data handling, complying with medical data privacy regulations. In a typical patient monitor, the STM32H723VET6 reads ECG, SpO2, and blood pressure sensors, processes the signals, and displays the results on an LCD. The Ethernet and USB interfaces allow connection to hospital networks for data logging and remote monitoring. The wide operating temperature range and long-term reliability make it suitable for continuous operation in clinical environments.
Recommended
Recommended Products Summary
Engineering reference data for STM32H723VET6 — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | STM32H723VGT6 | STM32H743VIT6 | STM32H753VIT6 |
|---|---|---|---|---|
| Package | LQFP100 | LQFP100 | LQFP100 | LQFP100 |
| Brand | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics |
| Maximum Clock Speed | 550 MHz | 550 MHz | 480 MHz | 480 MHz |
| Flash Memory | 1 Mbyte | 1 Mbyte | 2 Mbytes | 2 Mbytes |
| SRAM | 564 Kbytes | 564 Kbytes | 1 Mbyte | 1 Mbyte |
| ADC Resolution | 16-bit | 16-bit | 16-bit | 16-bit |
| Ethernet | Yes | Yes | Yes | Yes |
| Cryptographic Acceleration | Yes | Yes | Yes | Yes |
Key Differentiators
- Higher maximum clock speed (550 MHz) compared to STM32H743VIT6 (480 MHz) (vs STM32H743VIT6)
- Lower power consumption due to smaller SRAM and flash (vs STM32H743VIT6)
- Pin-compatible with higher-memory STM32H7 variants (vs STM32H743VIT6)
Design Notes
The STM32H723VET6 requires a stable power supply. Decouple each VDD pin with a 100 nF ceramic capacitor placed as close as possible to the pin. Additionally, place a 4.7 uF capacitor on the VDDA pin and a 1 uF capacitor on the VCAP pins to stabilize the internal voltage regulator. Use a ferrite bead in series with VDDA to filter high-frequency noise from the analog supply.
For the LQFP100 package, ensure proper solder paste stencil design to avoid solder bridging between pins. The 0.5 mm pitch requires precise alignment. Use a 0.15 mm stencil thickness and follow IPC-7525 guidelines for aperture design. Provide adequate thermal relief for the exposed pad (if present) to improve heat dissipation.
Place the crystal oscillator (HSE) and its load capacitors close to the PH0 and PH1 pins to minimize parasitic capacitance and ensure stable oscillation. Keep the oscillator traces short and shielded from high-speed digital signals. For the 32.768 kHz LSE crystal, similar layout rules apply to PC14 and PC15.
Compliance Information
RoHS and REACH compliant per STMicroelectronics product page. Not AEC-Q100 qualified; for automotive, consider STM32H7A3 or other automotive-grade variants.