STM32F723ZET6 - 512KB Flash, 216MHz ARM Cortex-M7 MCU | STMicroelectronics
MPN: STM32F723ZET6 β 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 STM32F723ZET6 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:
STM32F722ZET6
β Drop-Inπ Reference alternative (not in catalog)
STM32F745ZET6
β Drop-Inπ Reference alternative (not in catalog)
STM32F746ZET6
β Drop-Inπ Reference alternative (not in catalog)
STM32F767ZIT6
β Drop-Inβ 99,999 In Stock
$19.25 / Unit
View Datasheet βATSAMA5D27C-D1G-CU
β Drop-Inπ Reference alternative (not in catalog)
STM32F723ZET6 Maximum Ratings & Electrical Characteristics
| Core | ARM Cortex-M7 |
| Max Clock Speed | 216 MHz |
| Flash Memory | 512 KB |
| SRAM | 256 KB |
| Package | LQFP144 (20x20 mm) |
| Supply Voltage | 1.7V to 3.6V |
| Operating Temperature | -40C to +85C |
| GPIO Pins | 114 |
| ADC | 3x 12-bit, up to 24 channels |
| DAC | 2x 12-bit |
| Communication Interfaces | Ethernet MAC, USB OTG HS/FS, CAN, SPI, I2C, UART, SDMMC |
| Graphics | TFT-LCD controller, Chrom-ART Accelerator |
| Cryptography | AES, DES, 3DES, SHA-1, SHA-256, MD5, TRNG |
| Timers | Advanced, general-purpose, basic timers |
| RoHS | Compliant |
STM32F723ZET6 Pin Configuration
| Pin 1 | PE2 β GPIO or alternate function |
| Pin 2 | PE3 β GPIO or alternate function |
| Pin 3 | PE4 β GPIO or alternate function |
| Pin 4 | PE5 β GPIO or alternate function |
| Pin 5 | PE6 β GPIO or alternate function |
| Pin 6 | VBAT β Backup battery supply |
| Pin 7 | PC13 β GPIO or RTC output |
| Pin 8 | PC14 β GPIO or OSC32_IN |
| Pin 9 | PC15 β GPIO or OSC32_OUT |
| Pin 10 | PF0 β GPIO or alternate function |
| Pin 11 | PF1 β GPIO or alternate function |
| Pin 12 | PF2 β GPIO or alternate function |
| Pin 13 | PF3 β GPIO or alternate function |
| Pin 14 | PF4 β GPIO or alternate function |
| Pin 15 | PF5 β GPIO or alternate function |
| Pin 16 | PF6 β GPIO or alternate function |
| Pin 17 | PF7 β GPIO or alternate function |
| Pin 18 | PF8 β GPIO or alternate function |
| Pin 19 | PF9 β GPIO or alternate function |
| Pin 20 | PF10 β GPIO or alternate function |
| Pin 21 | VSS β Ground |
| Pin 22 | VDD β Power supply |
| Pin 23 | PF11 β GPIO or alternate function |
| Pin 24 | PF12 β GPIO or alternate function |
| Pin 25 | PF13 β GPIO or alternate function |
| Pin 26 | PF14 β GPIO or alternate function |
| Pin 27 | PF15 β GPIO or alternate function |
| Pin 28 | PG0 β GPIO or alternate function |
| Pin 29 | PG1 β GPIO or alternate function |
| Pin 30 | PG2 β GPIO or alternate function |
| Pin 31 | PG3 β GPIO or alternate function |
| Pin 32 | PG4 β GPIO or alternate function |
| Pin 33 | PG5 β GPIO or alternate function |
| Pin 34 | PG6 β GPIO or alternate function |
| Pin 35 | PG7 β GPIO or alternate function |
| Pin 36 | PG8 β GPIO or alternate function |
| Pin 37 | PG9 β GPIO or alternate function |
| Pin 38 | PG10 β GPIO or alternate function |
| Pin 39 | PG11 β GPIO or alternate function |
| Pin 40 | PG12 β GPIO or alternate function |
| Pin 41 | PG13 β GPIO or alternate function |
| Pin 42 | PG14 β GPIO or alternate function |
| Pin 43 | PG15 β GPIO or alternate function |
| Pin 44 | PD0 β GPIO or alternate function |
| Pin 45 | PD1 β GPIO or alternate function |
| Pin 46 | PD2 β GPIO or alternate function |
| Pin 47 | PD3 β GPIO or alternate function |
| Pin 48 | PD4 β GPIO or alternate function |
| Pin 49 | PD5 β GPIO or alternate function |
| Pin 50 | PD6 β GPIO or alternate function |
| Pin 51 | PD7 β GPIO or alternate function |
| Pin 52 | PD8 β GPIO or alternate function |
| Pin 53 | PD9 β GPIO or alternate function |
| Pin 54 | PD10 β GPIO or alternate function |
| Pin 55 | PD11 β GPIO or alternate function |
| Pin 56 | PD12 β GPIO or alternate function |
| Pin 57 | PD13 β GPIO or alternate function |
| Pin 58 | PD14 β GPIO or alternate function |
| Pin 59 | PD15 β GPIO or alternate function |
| Pin 60 | VSS β Ground |
| Pin 61 | VDD β Power supply |
| Pin 62 | PC0 β GPIO or ADC input |
| Pin 63 | PC1 β GPIO or ADC input |
| Pin 64 | PC2 β GPIO or ADC input |
| Pin 65 | PC3 β GPIO or ADC input |
| Pin 66 | PC4 β GPIO or alternate function |
| Pin 67 | PC5 β GPIO or alternate function |
| Pin 68 | PB0 β GPIO or ADC input |
| Pin 69 | PB1 β GPIO or ADC input |
| Pin 70 | PB2 β GPIO or alternate function |
| Pin 71 | PB3 β GPIO or alternate function |
| Pin 72 | PB4 β GPIO or alternate function |
| Pin 73 | PB5 β GPIO or alternate function |
| Pin 74 | PB6 β GPIO or alternate function |
| Pin 75 | PB7 β GPIO or alternate function |
| Pin 76 | PB8 β GPIO or alternate function |
| Pin 77 | PB9 β GPIO or alternate function |
| Pin 78 | PB10 β GPIO or alternate function |
| Pin 79 | PB11 β GPIO or alternate function |
| Pin 80 | PB12 β GPIO or alternate function |
| Pin 81 | PB13 β GPIO or alternate function |
| Pin 82 | PB14 β GPIO or alternate function |
| Pin 83 | PB15 β GPIO or alternate function |
| Pin 84 | PD8 β GPIO or alternate function |
| Pin 85 | PD9 β GPIO or alternate function |
| Pin 86 | PD10 β GPIO or alternate function |
| Pin 87 | PD11 β GPIO or alternate function |
| Pin 88 | PD12 β GPIO or alternate function |
| Pin 89 | PD13 β GPIO or alternate function |
| Pin 90 | PD14 β GPIO or alternate function |
| Pin 91 | PD15 β GPIO or alternate function |
| Pin 92 | VSS β Ground |
| Pin 93 | VDD β Power supply |
| Pin 94 | PA0 β GPIO or ADC input |
| Pin 95 | PA1 β GPIO or ADC input |
| Pin 96 | PA2 β GPIO or alternate function |
| Pin 97 | PA3 β GPIO or alternate function |
| Pin 98 | PA4 β GPIO or alternate function |
| Pin 99 | PA5 β GPIO or alternate function |
| Pin 100 | PA6 β GPIO or alternate function |
| Pin 101 | PA7 β GPIO or alternate function |
| Pin 102 | PA8 β GPIO or alternate function |
| Pin 103 | PA9 β GPIO or alternate function |
| Pin 104 | PA10 β GPIO or alternate function |
| Pin 105 | PA11 β GPIO or alternate function |
| Pin 106 | PA12 β GPIO or alternate function |
| Pin 107 | PA13 β GPIO or SWDIO |
| Pin 108 | PA14 β GPIO or SWCLK |
| Pin 109 | PA15 β GPIO or alternate function |
| Pin 110 | PC10 β GPIO or alternate function |
| Pin 111 | PC11 β GPIO or alternate function |
| Pin 112 | PC12 β GPIO or alternate function |
| Pin 113 | PD0 β GPIO or alternate function |
| Pin 114 | PD1 β GPIO or alternate function |
| Pin 115 | PD2 β GPIO or alternate function |
| Pin 116 | PD3 β GPIO or alternate function |
| Pin 117 | PD4 β GPIO or alternate function |
| Pin 118 | PD5 β GPIO or alternate function |
| Pin 119 | PD6 β GPIO or alternate function |
| Pin 120 | PD7 β GPIO or alternate function |
| Pin 121 | VSS β Ground |
| Pin 122 | VDD β Power supply |
| Pin 123 | PE0 β GPIO or alternate function |
| Pin 124 | PE1 β GPIO or alternate function |
| Pin 125 | PE7 β GPIO or alternate function |
| Pin 126 | PE8 β GPIO or alternate function |
| Pin 127 | PE9 β GPIO or alternate function |
| Pin 128 | PE10 β GPIO or alternate function |
| Pin 129 | PE11 β GPIO or alternate function |
| Pin 130 | PE12 β GPIO or alternate function |
| Pin 131 | PE13 β GPIO or alternate function |
| Pin 132 | PE14 β GPIO or alternate function |
| Pin 133 | PE15 β GPIO or alternate function |
| Pin 134 | PB10 β GPIO or alternate function |
| Pin 135 | PB11 β GPIO or alternate function |
| Pin 136 | PB12 β GPIO or alternate function |
| Pin 137 | PB13 β GPIO or alternate function |
| Pin 138 | PB14 β GPIO or alternate function |
| Pin 139 | PB15 β GPIO or alternate function |
| Pin 140 | PD8 β GPIO or alternate function |
| Pin 141 | PD9 β GPIO or alternate function |
| Pin 142 | PD10 β GPIO or alternate function |
| Pin 143 | PD11 β GPIO or alternate function |
| Pin 144 | PD12 β GPIO or alternate function |
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
STM32F723ZET6 is suitable for 6 applications: Industrial Control Systems, Human-Machine Interface (HMI), IoT Gateway, Medical Devices, Audio Processing, Smart Home Gateway.
Industrial Control Systems
The STM32F723ZET6 is ideal for industrial control systems due to its high-speed 216MHz Cortex-M7 core, advanced timers for PWM generation, and multiple communication interfaces (CAN, Ethernet, UART) for fieldbus connectivity. Its 512KB Flash and 256KB SRAM accommodate complex control algorithms and data logging. The hardware cryptographic accelerator ensures secure communication in industrial IoT applications. The device's wide operating temperature range (-40C to +85C) and robust peripheral set make it suitable for PLCs, motor drives, and robotic controllers. In a typical motor control application, the advanced timers generate precise PWM signals, while the ADC channels monitor current and voltage feedback, enabling closed-loop control with minimal latency.
Recommended
Human-Machine Interface (HMI)
The STM32F723ZET6 excels in HMI applications with its integrated TFT-LCD controller and Chrom-ART Accelerator, which offload 2D graphics rendering from the CPU. This enables smooth, responsive user interfaces with high-resolution displays (up to XGA). The 512KB Flash provides ample storage for GUI assets, while the 256KB SRAM supports frame buffering. The device's rich connectivity (Ethernet, USB, UART) allows easy integration with external systems. In a typical HMI, the TFT-LCD controller drives the display directly, while the Chrom-ART Accelerator handles bitmap operations, freeing the CPU for application logic. The capacitive touch interface can be implemented using the I2C or SPI peripherals. The low-power modes help reduce energy consumption in battery-powered handheld HMIs.
Recommended
IoT Gateway
The STM32F723ZET6 is well-suited for IoT gateways due to its Ethernet MAC, USB OTG, and multiple communication interfaces (SPI, I2C, UART, CAN). The hardware cryptographic accelerator (AES, SHA) enables secure data transmission, while the TRNG provides random numbers for key generation. The 512KB Flash and 256KB SRAM support protocol stacks like MQTT, CoAP, and TLS. In a typical IoT gateway, the Ethernet MAC connects to a wired network, while the USB OTG can interface with cellular modems or Wi-Fi modules. The device can handle data aggregation, protocol conversion, and edge processing. The low-power modes allow battery-backed operation during network outages. The wide supply voltage range (1.7V-3.6V) accommodates various power sources.
Recommended
Medical Devices
The STM32F723ZET6 is suitable for medical devices such as patient monitors, infusion pumps, and diagnostic equipment. Its high-performance core enables real-time signal processing, while the 12-bit ADC with up to 24 channels captures physiological signals with high resolution. The TFT-LCD controller supports graphical displays for user interfaces, and the cryptographic accelerator ensures data security for patient records. The device's reliability and wide temperature range make it suitable for medical environments. In a patient monitor, the ADC samples ECG or SpO2 signals, the Cortex-M7 processes the data for waveform display, and the TFT-LCD controller renders the graphical interface. The Ethernet or USB interfaces allow data transfer to hospital networks. The low-power modes help extend battery life in portable devices.
Recommended
Audio Processing
The STM32F723ZET6 is capable of audio processing applications such as audio effects processors, voice recognition, and multi-channel audio systems. The 216MHz Cortex-M7 with double-precision FPU provides ample computational power for DSP algorithms like FIR filters, FFT, and audio codecs. The I2S interface supports digital audio input/output, and the DAC can generate analog audio signals. The 512KB Flash can store audio samples or code, while the 256KB SRAM buffers audio streams. In a typical audio effects processor, the I2S interface receives digital audio from a codec, the Cortex-M7 applies effects (e.g., reverb, equalization), and the I2S outputs the processed audio. The Chrom-ART Accelerator can be used for audio visualization on a display. The device's low latency and deterministic execution make it suitable for real-time audio processing.
Recommended
Smart Home Gateway
The STM32F723ZET6 is ideal for smart home gateways that connect various IoT devices (Zigbee, Z-Wave, Wi-Fi, Bluetooth) to the internet. Its multiple communication interfaces (UART, SPI, I2C, USB, Ethernet) allow integration with different wireless modules. The hardware cryptographic accelerator secures communication, and the TRNG generates session keys. The 512KB Flash and 256KB SRAM support protocol stacks for various smart home standards. In a typical smart home gateway, the device manages multiple wireless modules via UART or SPI, aggregates data, and communicates with the cloud via Ethernet or Wi-Fi. The TFT-LCD controller can drive a local display for status monitoring. The low-power modes help reduce energy consumption when idle. The device's rich peripheral set and high performance make it a central hub for home automation.
Recommended
Recommended Products Summary
Engineering reference data for STM32F723ZET6 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | STM32F722ZET6 | STM32F745ZET6 | STM32F746ZET6 | STM32F767ZIT6 | ATSAMA5D27C-D1G-CU |
|---|---|---|---|---|---|---|
| Package | LQFP144 | LQFP144 | LQFP144 | LQFP144 | LQFP144 | LQFP144 |
| Brand | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics | Microchip Technology |
| Core | ARM Cortex-M7 | ARM Cortex-M7 | ARM Cortex-M7 | ARM Cortex-M7 | ARM Cortex-M7 | ARM Cortex-A5 |
| Max Clock Speed | 216 MHz | 216 MHz | 216 MHz | 216 MHz | 216 MHz | 500 MHz |
| Flash Memory | 512 KB | 512 KB | 512 KB | 1 MB | 2 MB | [DATA_NEEDED] |
| SRAM | 256 KB | 256 KB | 320 KB | 320 KB | 512 KB | [DATA_NEEDED] |
| Hardware Crypto | Yes (AES, DES, 3DES, SHA-1, SHA-256, MD5) | No | No | No | Yes | [DATA_NEEDED] |
| TFT-LCD Controller | Yes | Yes | Yes | Yes | Yes | [DATA_NEEDED] |
| Ethernet MAC | Yes | Yes | Yes | Yes | Yes | [DATA_NEEDED] |
Key Differentiators
- Hardware cryptographic accelerator (vs STM32F722ZET6)
- Higher performance with Chrom-ART Accelerator (vs STM32F745ZET6)
- Lower power consumption (vs STM32F767ZIT6)
Design Notes
The STM32F723ZET6 operates from 1.7V to 3.6V. Use a 100nF decoupling capacitor on each VDD pin and a 4.7uF bulk capacitor on the main supply. The VDDA pin must be connected to a clean analog supply, and the VCAP pins require external capacitors (2.2uF) as specified in the datasheet. For low-power modes, ensure the power supply can handle current spikes during wake-up.
For high-speed interfaces like Ethernet and USB, follow the layout guidelines in ST application note AN4666. Keep traces short and impedance-controlled (90 ohms for USB, 100 ohms for Ethernet). Place the external PHY close to the MCU and use a crystal oscillator with load capacitors as specified. For the TFT-LCD interface, route the parallel data lines with matched lengths to avoid skew.
The LQFP144 package has a thermal resistance (theta_JA) of approximately 40 C/W. At 216MHz with all peripherals active, power dissipation can reach 500mW, resulting in a 20C temperature rise above ambient. Ensure adequate airflow or a thermal pad on the PCB for high-temperature environments. The operating temperature range is -40C to +85C.
Compliance Information
RoHS compliant per STMicroelectronics product page. Not AEC-Q100 qualified (industrial grade).