STM32F413VGT6 - 1MB Flash, 100MHz ARM Cortex-M4F MCU | STMicroelectronics
MPN: STM32F413VGT6 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 STM32F413VGT6 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:
STM32F413VGH6
β Drop-Inπ Reference alternative (not in catalog)
STM32F413VGT6TR
β Drop-Inπ Reference alternative (not in catalog)
STM32F407VGT6
β Drop-Inβ 99,999 In Stock
$5.56 / Unit
View Datasheet βSTM32F415VGT6
β Drop-Inβ 99,999 In Stock
$8.1 / Unit
View Datasheet βSTM32F417VGT6
β Drop-Inβ 99,999 In Stock
$8.1 / Unit
View Datasheet βLPC4357FET256
β‘ Same Packageπ Reference alternative (not in catalog)
STM32F413VGT6 Maximum Ratings & Electrical Characteristics
| Core | ARM Cortex-M4F with FPU |
| Maximum Clock Speed | 100 MHz |
| Flash Memory | 1 MB |
| SRAM | 320 KB |
| Supply Voltage Range | 1.7 V to 3.6 V |
| Operating Temperature Range | -40Β°C to +85Β°C |
| Package | LQFP100 (14x14 mm, 0.5 mm pitch) |
| Number of Pins | 100 |
| ADC | 3x 12-bit, up to 16 channels |
| DAC | 2x 12-bit |
| Timers | 12x 16-bit, 2x 32-bit |
| Communication Interfaces | 6x USART, 5x SPI, 3x I2C, 2x CAN, USB OTG FS, SDIO |
| Cryptographic Acceleration | AES, DES, 3DES, SHA-1, SHA-256, MD5 |
| Random Number Generator | True RNG (TRNG) |
| DMA | 16-channel DMA controller |
| GPIO | Up to 82 I/O ports |
| RoHS Status | Compliant |
STM32F413VGT6 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 | PH0 β OSC_IN or GPIO |
| Pin 24 | PH1 β OSC_OUT or GPIO |
| Pin 25 | NRST β Reset (active low) |
| Pin 26 | PC0 β GPIO or ADC input |
| Pin 27 | PC1 β GPIO or ADC input |
| Pin 28 | PC2 β GPIO or ADC input |
| Pin 29 | PC3 β GPIO or ADC input |
| Pin 30 | VSSA β Analog ground |
| Pin 31 | VDDA β Analog power supply |
| Pin 32 | PA0 β GPIO or ADC input |
| Pin 33 | PA1 β GPIO or ADC input |
| Pin 34 | PA2 β GPIO or USART2_TX |
| Pin 35 | PA3 β GPIO or USART2_RX |
| Pin 36 | PA4 β GPIO or DAC_OUT1 |
| Pin 37 | PA5 β GPIO or DAC_OUT2 |
| Pin 38 | PA6 β GPIO or SPI1_MISO |
| Pin 39 | PA7 β GPIO or SPI1_MOSI |
| Pin 40 | PC4 β GPIO or I2S1_MCK |
| Pin 41 | PC5 β GPIO or I2S1_SCK |
| Pin 42 | PB0 β GPIO or ADC input |
| Pin 43 | PB1 β GPIO or ADC input |
| Pin 44 | PB2 β GPIO or BOOT1 |
| Pin 45 | PB10 β GPIO or I2C2_SCL |
| Pin 46 | PB11 β GPIO or I2C2_SDA |
| Pin 47 | PB12 β GPIO or SPI2_NSS |
| Pin 48 | PB13 β GPIO or SPI2_SCK |
| Pin 49 | PB14 β GPIO or SPI2_MISO |
| Pin 50 | PB15 β GPIO or SPI2_MOSI |
| Pin 51 | PD8 β GPIO or USART3_TX |
| Pin 52 | PD9 β GPIO or USART3_RX |
| Pin 53 | PD10 β GPIO or USART3_CK |
| Pin 54 | PD11 β GPIO or USART3_CTS |
| Pin 55 | PD12 β GPIO or USART3_RTS |
| Pin 56 | PD13 β GPIO or TIM4_CH2 |
| Pin 57 | PD14 β GPIO or TIM4_CH3 |
| Pin 58 | PD15 β GPIO or TIM4_CH4 |
| Pin 59 | PC6 β GPIO or TIM3_CH1 |
| Pin 60 | PC7 β GPIO or TIM3_CH2 |
| Pin 61 | PC8 β GPIO or TIM3_CH3 |
| Pin 62 | PC9 β GPIO or TIM3_CH4 |
| Pin 63 | PA8 β GPIO or USB_OTG_FS_SOF |
| Pin 64 | PA9 β GPIO or USB_OTG_FS_VBUS |
| Pin 65 | PA10 β GPIO or USB_OTG_FS_ID |
| Pin 66 | PA11 β GPIO or USB_OTG_FS_DM |
| Pin 67 | PA12 β GPIO or USB_OTG_FS_DP |
| Pin 68 | PA13 β GPIO or SWDIO |
| Pin 69 | PA14 β GPIO or SWCLK |
| Pin 70 | PA15 β GPIO or JTDI |
| Pin 71 | PC10 β GPIO or USART4_TX |
| Pin 72 | PC11 β GPIO or USART4_RX |
| Pin 73 | PC12 β GPIO or USART5_TX |
| Pin 74 | PD0 β GPIO or CAN1_RX |
| Pin 75 | PD1 β GPIO or CAN1_TX |
| Pin 76 | PD2 β GPIO or TIM3_ETR |
| Pin 77 | PD3 β GPIO or USART2_CTS |
| Pin 78 | PD4 β GPIO or USART2_RTS |
| Pin 79 | PD5 β GPIO or USART2_TX |
| Pin 80 | PD6 β GPIO or USART2_RX |
| Pin 81 | PD7 β GPIO or USART2_CK |
| Pin 82 | PE7 β GPIO or TIM1_ETR |
| Pin 83 | PE8 β GPIO or TIM1_CH1 |
| Pin 84 | PE9 β GPIO or TIM1_CH2 |
| Pin 85 | PE10 β GPIO or TIM1_CH3 |
| Pin 86 | PE11 β GPIO or TIM1_CH4 |
| Pin 87 | PE12 β GPIO or TIM1_CH1N |
| Pin 88 | PE13 β GPIO or TIM1_CH2N |
| Pin 89 | PE14 β GPIO or TIM1_CH3N |
| Pin 90 | PE15 β GPIO or TIM1_CH4N |
| Pin 91 | PB3 β GPIO or JTDO |
| Pin 92 | PB4 β GPIO or NJTRST |
| Pin 93 | PB5 β GPIO or I2C1_SMBA |
| Pin 94 | PB6 β GPIO or I2C1_SCL |
| Pin 95 | PB7 β GPIO or I2C1_SDA |
| Pin 96 | BOOT0 β Boot mode selection |
| Pin 97 | PB8 β GPIO or CAN2_RX |
| Pin 98 | PB9 β GPIO or CAN2_TX |
| Pin 99 | VSS β Ground |
| Pin 100 | VDD β Power supply |
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
STM32F413VGT6 is suitable for 6 applications: Industrial Control Systems, Medical Devices, IoT Gateways, Consumer Electronics, Automotive Electronics, Test and Measurement Equipment.
Industrial Control Systems
The STM32F413VGT6 is ideal for industrial control systems due to its high-speed 100 MHz Cortex-M4F core, multiple timers for PWM generation, and 12-bit ADCs for precise analog sensing. It can handle complex control algorithms like PID and FOC for motor drives, and its robust communication interfaces (CAN, USART, SPI) enable seamless integration with industrial networks. The device's wide operating temperature range (-40Β°C to +85Β°C) ensures reliability in harsh environments. In a typical PLC (Programmable Logic Controller), the STM32F413VGT6 manages I/O scanning, communication protocols, and real-time control loops. Its 1 MB flash allows storing extensive firmware for multiple functions, while 320 KB SRAM supports large data buffers for data logging. The cryptographic unit enhances security for industrial IoT applications, protecting against unauthorized access. Designers can leverage the STM32CubeMX tool to configure peripherals and generate initialization code, accelerating development. The LQFP100 package is easy to solder and suitable for industrial PCBs with moderate component density.
Recommended
Medical Devices
The STM32F413VGT6 is well-suited for medical devices such as patient monitors, infusion pumps, and diagnostic equipment. Its high processing power enables real-time signal processing for ECG, EEG, and blood pressure monitoring. The device's low power consumption is critical for battery-operated portable medical devices, and its wide voltage range (1.7V to 3.6V) allows operation from a single lithium-ion cell. The cryptographic acceleration unit ensures secure data transmission for patient privacy compliance (e.g., HIPAA). In a typical patient monitor, the STM32F413VGT6 acquires analog signals from sensors via its ADCs, processes them using DSP instructions, and displays results on an LCD. The 1 MB flash stores calibration data and firmware updates, while 320 KB SRAM buffers real-time data streams. The device's multiple communication interfaces (USB, UART, SPI) facilitate connectivity to external modules like Wi-Fi or Bluetooth for remote monitoring. The LQFP100 package is compact enough for portable designs, and the -40Β°C to +85Β°C temperature range covers clinical environments. Designers must ensure proper isolation and EMC compliance for medical safety standards.
Recommended
IoT Gateways
The STM32F413VGT6 is an excellent choice for IoT gateways that aggregate data from multiple sensors and communicate with cloud services. Its rich connectivity options (USB OTG, CAN, SDIO, USART, SPI, I2C) allow interfacing with various wireless modules (Wi-Fi, LoRa, Zigbee) and wired networks. The cryptographic acceleration unit enables secure TLS/DTLS handshakes, essential for protecting data in transit. The device's 100 MHz core can handle protocol stacks like MQTT and CoAP efficiently. In a typical IoT gateway, the STM32F413VGT6 collects sensor data via UART or SPI, processes it locally, and forwards it to the cloud via an Ethernet or Wi-Fi module. The 1 MB flash stores the firmware and configuration, while 320 KB SRAM buffers data bursts. The TRNG generates secure keys for authentication. The device's low-power modes allow battery-powered gateways to operate for extended periods. The LQFP100 package is suitable for compact gateway designs, and the wide temperature range supports outdoor deployment. Designers should consider adding an external Ethernet PHY for wired connectivity, as the F413 does not have a built-in MAC.
Recommended
Consumer Electronics
The STM32F413VGT6 is used in high-end consumer electronics like smart home hubs, audio systems, and wearable devices. Its high performance enables advanced user interfaces with graphics, audio processing, and voice recognition. The device's large memory (1 MB flash, 320 KB SRAM) supports complex applications and over-the-air updates. The cryptographic unit ensures secure firmware updates and user data protection. In a smart home hub, the STM32F413VGT6 manages multiple communication protocols (Zigbee, Z-Wave, Wi-Fi) and controls connected devices. Its ADCs and DACs interface with sensors and audio codecs. The device's low power consumption is crucial for battery-powered wearables, and its small LQFP100 package fits compact designs. The -40Β°C to +85Β°C temperature range covers typical consumer environments. Designers can use STM32CubeMX to configure peripherals and generate code, speeding up development. For audio applications, the FPU accelerates audio processing algorithms like noise cancellation and equalization.
Recommended
Automotive Electronics
The STM32F413VGT6 is suitable for automotive applications such as body control modules, infotainment systems, and advanced driver-assistance systems (ADAS) entry-level. Its high performance and rich peripherals enable real-time control and communication with CAN buses. The device's wide temperature range (-40Β°C to +85Β°C) meets automotive requirements, and its cryptographic unit supports secure communication protocols like SecOC. In a body control module, the STM32F413VGT6 manages lighting, windows, and door locks, using its timers for PWM dimming and ADCs for sensor inputs. The CAN interface connects to the vehicle's network. The 1 MB flash stores complex diagnostic routines, and 320 KB SRAM handles real-time data. The device's low power consumption is beneficial for always-on modules. The LQFP100 package is robust for automotive PCBs. Designers must ensure compliance with AEC-Q100 standards; the standard STM32F413VGT6 is not AEC-Q100 qualified, but ST offers automotive-grade variants (e.g., STM32F413VGT6Q) for such applications.
Recommended
Test and Measurement Equipment
The STM32F413VGT6 is ideal for test and measurement equipment like oscilloscopes, data loggers, and signal generators. Its high-speed ADC and DACs enable precise signal acquisition and generation. The 100 MHz core can handle real-time signal processing, and the large memory buffers data for analysis. The device's multiple timers provide accurate timebase for triggering and sampling. In a portable oscilloscope, the STM32F413VGT6 acquires analog signals via its ADCs, processes them using DSP instructions, and displays waveforms on an LCD. The 1 MB flash stores firmware and calibration data, while 320 KB SRAM buffers waveform samples. The USB OTG interface allows connection to a PC for data transfer. The device's low power consumption extends battery life in portable instruments. The LQFP100 package is suitable for compact designs. Designers can use the FPU for fast FFT computations. The wide temperature range ensures accuracy in various environments.
Recommended
Recommended Products Summary
Engineering reference data for STM32F413VGT6 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | STM32F413VGH6 | STM32F407VGT6 | STM32F415VGT6 | STM32F417VGT6 | LPC4357FET256 |
|---|---|---|---|---|---|---|
| Package | LQFP100 | LQFP100 - same | LQFP100 - same | LQFP100 - same | LQFP100 - same | LQFP100 - same |
| Brand | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics | NXP Semiconductors |
| Core | ARM Cortex-M4F | ARM Cortex-M4F | ARM Cortex-M4F | ARM Cortex-M4F | ARM Cortex-M4F | Dual-core Cortex-M4/M0 |
| Maximum Clock Speed | 100 MHz | 100 MHz | 168 MHz | 100 MHz | 168 MHz | 204 MHz (M4) |
| Flash Memory | 1 MB | 1 MB | 1 MB | 1 MB | 1 MB | 1 MB |
| SRAM | 320 KB | 320 KB | 192 KB | 192 KB | 192 KB | 136 KB |
| Cryptographic Acceleration | Yes (AES, DES, 3DES, SHA-1, SHA-256, MD5) | Yes | No | No | No | No |
| Ethernet MAC | No | No | Yes | No | Yes | Yes |
| Temperature Range | -40Β°C to +85Β°C | -40Β°C to +105Β°C | -40Β°C to +85Β°C | -40Β°C to +85Β°C | -40Β°C to +85Β°C | -40Β°C to +85Β°C |
Key Differentiators
- Largest SRAM in its class (320 KB) (vs STM32F407VGT6)
- Integrated cryptographic acceleration (vs STM32F407VGT6)
- Lower power consumption at same clock (vs STM32F407VGT6)
Design Notes
Decouple each VDD pin with a 100nF ceramic capacitor placed as close as possible to the pin. Additionally, place a 4.7uF bulk capacitor on the main VDD rail. The VDDA pin must be connected to a clean analog supply, typically through a ferrite bead and a 1uF capacitor to ground, to ensure ADC accuracy. The VBAT pin should be connected to a backup battery or tied to VDD through a diode to maintain RTC operation when main power is off.
For high-speed USB, route the D+ and D- lines as a differential pair with 90-ohm impedance. Place a 22-ohm series resistor on each line near the MCU. For the crystal oscillator, place the crystal and load capacitors close to the OSC_IN/OSC_OUT pins, and keep the trace lengths short to minimize parasitic capacitance. Use a ground plane under the MCU to reduce noise and improve EMC.
Ensure the BOOT0 pin is pulled low (through a 10k resistor) for normal flash boot. If BOOT0 is high, the device will boot from system memory, which may cause unexpected behavior. Also, do not leave unused GPIO pins floating; configure them as outputs or enable internal pull-ups/pull-downs to avoid excessive power consumption. For ADC accuracy, avoid routing digital signals near the VDDA pin.
Compliance Information
RoHS compliant per STMicroelectronics. Not AEC-Q100 qualified; automotive-grade variant STM32F413VGT6Q is available.