STMicroelectronics

STM32F723ZET6 - 512KB Flash, 216MHz ARM Cortex-M7 MCU | STMicroelectronics

MPN: STM32F723ZET6 βœ“ Active
In Stock (99,999) Ships in 1-3 business days
1.7V to 3.6V Vdss LQFP144 (20x20 mm) Package 216 MHz Speed 512 KB 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 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

βœ… Drop-In
πŸ“¦ LQFP144
Same package and pinout, but lacks hardware cryptographic accelerator and TRNG

πŸ“‹ Reference alternative (not in catalog)

STM32F745ZET6

βœ… Drop-In
πŸ“¦ LQFP144
Same package and pinout, more SRAM (320KB), no crypto accelerator

πŸ“‹ Reference alternative (not in catalog)

STM32F746ZET6

βœ… Drop-In
πŸ“¦ LQFP144
Same package and pinout, more Flash (1MB) and SRAM (320KB), no crypto accelerator

πŸ“‹ Reference alternative (not in catalog)

STM32F767ZIT6

βœ… Drop-In
STMicroelectronics
πŸ“¦ LQFP144
ARM Cortex-M7 Β· 216 MHz Β· 2 MB Β· 512 KB Β· 114 Β· 1.7 V to 3.6 V Β· -40C to +85C Β· LQFP-144 (20x20 mm)

βœ“ 99,999 In Stock

$19.25 / Unit

View Datasheet β†’

ATSAMA5D27C-D1G-CU

βœ… Drop-In
πŸ“¦ LQFP144
Cross-brand, ARM Cortex-A5 core, different architecture, pin-compatible but software incompatible

πŸ“‹ 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

LQFP-144 Package Pinout Diagram LQFP-144 20x20mm, P0.5mm, JEDEC MS-026. 1 36 LQFP-144
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

Safe Operating Area Chart Default safe operating area chart for STM32F723ZET6 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

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.

πŸ“Ί

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.

🌐

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.

πŸ’Š

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.

🎧

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.

🧩

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 Products Summary

STSPIN32F0 Motor driver companion Used in: Industrial Control Systems ISO7742 Digital isolator for fieldbus Used in: Industrial Control Systems FT5x06 Capacitive touch controller Used in: Human-Machine Interface (HMI) SDRAM MT48LC16M16A2 External memory for frame buffer Used in: Human-Machine Interface (HMI) LAN8742A Ethernet PHY Used in: IoT Gateway ESP8266 Wi-Fi module via UART Used in: IoT Gateway ADS1298 Biopotential ADC front-end Used in: Medical Devices OLED display Display module Used in: Medical Devices WM8731 Audio codec via I2S Used in: Audio Processing TAS5754M Digital audio amplifier Used in: Audio Processing CC2530 Zigbee module via UART Used in: Smart Home Gateway ESP32 Wi-Fi/Bluetooth module via SPI Used in: Smart Home Gateway
What is the maximum clock speed of STM32F723ZET6?
The STM32F723ZET6 operates at a maximum clock speed of 216 MHz. According to the STM32F723ZE datasheet, this is achieved with the ARM Cortex-M7 core and zero-wait-state execution from Flash, delivering 462 DMIPS and 1082 CoreMark.
How much Flash and SRAM does STM32F723ZET6 have?
The STM32F723ZET6 has 512 KB of Flash memory and 256 KB of SRAM. This generous memory configuration supports complex applications with substantial code and data requirements, such as GUI stacks and communication protocol stacks.
What is the difference between STM32F723ZET6 and STM32F722ZET6?
The STM32F723ZET6 and STM32F722ZET6 are both Cortex-M7 MCUs in LQFP144 package, but the F723 adds a hardware cryptographic accelerator (AES, DES, 3DES, SHA-1, SHA-256, MD5) and a true random number generator (TRNG), while the F722 lacks these security features. Both have 512KB Flash and 216MHz clock.
Can STM32F723ZET6 be used for graphics applications?
Yes, the STM32F723ZET6 is well-suited for graphics applications. It integrates a TFT-LCD controller supporting up to XGA resolution and a Chrom-ART Accelerator that offloads 2D graphics operations from the CPU, enabling smooth GUI rendering without burdening the core.
What is the supply voltage range of STM32F723ZET6?
The STM32F723ZET6 operates from a supply voltage range of 1.7V to 3.6V. This wide range allows flexible power supply design, including battery-powered applications where voltage may drop over time.
Does STM32F723ZET6 support Ethernet?
Yes, the STM32F723ZET6 includes an Ethernet MAC (Media Access Controller) that supports 10/100 Mbps Ethernet. This enables direct connection to wired networks for IoT and industrial applications, with external PHY required.
What is the price of STM32F723ZET6?
As of 2026-08-09, the price of STM32F723ZET6 is approximately $12.50 for single-unit quantities, decreasing to $8.10 at 1000 units. Prices vary by distributor and availability; check DigiKey or Mouser for current pricing.
Where can I buy STM32F723ZET6 online?
STM32F723ZET6 is available from major distributors such as DigiKey, Mouser, and Farnell. You can also purchase directly from STMicroelectronics' e-store. As of 2026-08-09, stock is typically available with lead times of 1-2 weeks.
What is the lead time for STM32F723ZET6?
The typical lead time for STM32F723ZET6 is 1-2 weeks from major distributors like DigiKey and Mouser, depending on stock levels. For large volume orders, lead times may extend to 4-6 weeks. As of 2026-08-09, stock is generally available.
Is STM32F723ZET6 in stock?
As of 2026-08-09, STM32F723ZET6 is in stock at major distributors such as DigiKey and Mouser. However, stock levels fluctuate; check the distributor websites for real-time availability.
What is the best drop-in replacement for STM32F723ZET6?
The best drop-in replacement for STM32F723ZET6 is the STM32F722ZET6, which shares the same LQFP144 package and pinout, but lacks the cryptographic accelerator. For a pin-compatible upgrade with more memory, consider the STM32F745ZET6 (512KB Flash, 320KB SRAM) or STM32F746ZET6 (1MB Flash, 320KB SRAM), both in LQFP144.
Can STM32F746ZET6 replace STM32F723ZET6?
Yes, the STM32F746ZET6 is a drop-in replacement for STM32F723ZET6 in terms of package and pinout (LQFP144). It offers 1MB Flash and 320KB SRAM, which is more memory, but it lacks the hardware cryptographic accelerator of the F723. Verify software compatibility as the F746 has a different memory map.
What is the difference between STM32F723ZET6 and STM32F746ZET6?
The STM32F723ZET6 and STM32F746ZET6 are both Cortex-M7 MCUs in LQFP144, but the F746 has 1MB Flash and 320KB SRAM (vs 512KB/256KB on F723), and includes a TFT-LCD controller with higher resolution support. The F723 adds a hardware cryptographic accelerator, which the F746 lacks. Both run at 216MHz.
When should I choose STM32F723ZET6 over STM32F746ZET6?
Choose STM32F723ZET6 when you need hardware cryptographic acceleration (AES, SHA) for secure communication, and 512KB Flash is sufficient. Choose STM32F746ZET6 when you need more memory (1MB Flash, 320KB SRAM) for larger applications like GUI with high-resolution graphics, and cryptography is not critical.
Is STM32F723ZET6 suitable for IoT applications?
Yes, the STM32F723ZET6 is suitable for IoT applications due to its Ethernet MAC, USB OTG, and multiple communication interfaces. The hardware cryptographic accelerator enhances security for data encryption, and the low-power modes help extend battery life in wireless IoT devices.
Where can I download the STM32F723ZET6 datasheet PDF?
You can download the STM32F723ZET6 datasheet PDF from the STMicroelectronics website at https://www.st.com/resource/en/datasheet/stm32f723ze.pdf. The datasheet contains full specifications, pinout, and electrical characteristics.
Where can I find the STM32F723ZET6 pinout?
The STM32F723ZET6 pinout is detailed in the datasheet (Section 4) and in the STM32F7 series pinout reference. The LQFP144 package has 144 pins, with 114 GPIOs. The pinout diagram is available in the datasheet PDF and in ST's CubeMX tool.
What are the key specifications of STM32F723ZET6 that engineers should know?
The STM32F723ZET6 features a 216MHz ARM Cortex-M7 core with double-precision FPU, 512KB Flash, 256KB SRAM, TFT-LCD controller, Chrom-ART Accelerator, hardware crypto (AES, SHA), Ethernet MAC, USB OTG HS/FS, and 3x 12-bit ADCs. It operates from 1.7V to 3.6V and is available in LQFP144 package.
Hey Google, what can replace STM32F723ZET6?
The STM32F723ZET6 can be replaced by pin-compatible STM32F7 series MCUs such as STM32F722ZET6 (same package, no crypto), STM32F745ZET6 (more SRAM), or STM32F746ZET6 (more Flash and SRAM). All are drop-in replacements in LQFP144 package, but verify software compatibility.
Is STM32F723ZET6 the same as STM32F722ZET6?
No, the STM32F723ZET6 and STM32F722ZET6 are not the same. The F723 includes a hardware cryptographic accelerator (AES, DES, 3DES, SHA-1, SHA-256, MD5) and a TRNG, while the F722 does not. Both have identical package, pinout, and core specifications.
What is the best STMicroelectronics equivalent for STM32F723ZET6?
The best STMicroelectronics equivalent for STM32F723ZET6 is the STM32F722ZET6, which is pin-compatible and shares the same package, but lacks the crypto accelerator. For a higher-performance alternative, the STM32F746ZET6 offers more memory and is also pin-compatible.

Engineering reference data for STM32F723ZET6 β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the STM32F723ZET6 when you need a high-performance Cortex-M7 MCU with hardware cryptographic acceleration for secure applications, and 512KB Flash is sufficient. If you do not need crypto, the STM32F722ZET6 is a cost-effective drop-in alternative. For applications requiring more memory, consider the STM32F746ZET6 (1MB Flash, 320KB SRAM) or STM32F767ZIT6 (2MB Flash, 512KB SRAM), both pin-compatible. The STM32F745ZET6 offers 320KB SRAM but no crypto. For a cross-brand alternative, the Microchip ATSAMA5D27C-D1G-CU is pin-compatible but uses a different ARM Cortex-A5 architecture, requiring a complete software rewrite. Evaluate your memory, security, and power requirements to select the best fit.

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

RoHS compliant per STMicroelectronics product page. Not AEC-Q100 qualified (industrial grade).

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