STM32F302CBT6 - 32-Bit ARM Cortex-M4 MCU 72MHz 128KB Flash | STMicroelectronics
MPN: STM32F302CBT6 β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $4.85 | $4.85 |
| 10 | $4.36 | $43.60 |
| 100 | $3.88 | $388.00 |
| 500 | $3.49 | $1,745.00 |
| 1,000 | $3.1 | $3,100.00 |
Drop-in alternatives for STM32F302CBT6 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:
STM32F302CCT6
β Drop-Inπ Reference alternative (not in catalog)
STM32F302C8T6
β Drop-Inπ Reference alternative (not in catalog)
GD32F303CBT6
β Drop-Inπ Reference alternative (not in catalog)
STM32F303CBT6
β Drop-Inβ 99,999 In Stock
$4.16 / Unit
View Datasheet βSTM32F302CBT6 Maximum Ratings & Electrical Characteristics
| Core | ARM Cortex-M4 with FPU |
| Maximum Clock Frequency | 72 MHz |
| Flash Memory | 128 KB |
| SRAM | 32 KB |
| Data Bus Width | 32-bit |
| ADC Resolution | 12-bit |
| ADC Sampling Rate | 5 MSPS |
| Number of I/O Pins | 37 |
| Supply Voltage Range | 2.0 V to 3.6 V |
| Operating Temperature Range | -40Β°C to +85Β°C |
| Package | LQFP-48 (7x7 mm) |
| Mounting Type | Surface Mount |
| DSP Instructions | Yes |
| Floating Point Unit | Yes |
| Memory Protection Unit | Yes |
| Core Coupled Memory | Yes |
| Programmable Gain Amplifiers | Yes |
| Analog Comparators | Yes |
| RoHS Status | Compliant |
STM32F302CBT6 Pin Configuration
| Pin 1 | VBAT β Battery backup 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 / OSC_IN |
| Pin 6 | PF1 β GPIO / OSC_OUT |
| Pin 7 | NRST β Reset (active low) |
| Pin 8 | VDD β Digital power supply |
| Pin 9 | VSS β Digital ground |
| Pin 10 | PA0 β GPIO / ADC_IN0 |
| Pin 11 | PA1 β GPIO / ADC_IN1 |
| Pin 12 | PA2 β GPIO / USART2_TX |
| Pin 13 | PA3 β GPIO / USART2_RX |
| Pin 14 | PA4 β GPIO / DAC_OUT1 |
| Pin 15 | PA5 β GPIO / DAC_OUT2 |
| Pin 16 | PA6 β GPIO / SPI1_MISO |
| Pin 17 | PA7 β GPIO / SPI1_MOSI |
| Pin 18 | PB0 β GPIO / ADC_IN8 |
| Pin 19 | PB1 β GPIO / ADC_IN9 |
| Pin 20 | PB2 β GPIO / BOOT1 |
| Pin 21 | PB10 β GPIO / I2C2_SCL |
| Pin 22 | PB11 β GPIO / I2C2_SDA |
| Pin 23 | PB12 β GPIO / SPI2_NSS |
| Pin 24 | PB13 β GPIO / SPI2_SCK |
| Pin 25 | PB14 β GPIO / SPI2_MISO |
| Pin 26 | PB15 β GPIO / SPI2_MOSI |
| Pin 27 | PA8 β GPIO / MCO |
| Pin 28 | PA9 β GPIO / USART1_TX |
| Pin 29 | PA10 β GPIO / USART1_RX |
| Pin 30 | PA11 β GPIO / USB_DM |
| Pin 31 | PA12 β GPIO / USB_DP |
| Pin 32 | PA13 β GPIO / SWDIO |
| Pin 33 | PA14 β GPIO / SWCLK |
| Pin 34 | PA15 β GPIO / JTDI |
| Pin 35 | PB3 β GPIO / JTDO |
| Pin 36 | PB4 β GPIO / NJTRST |
| Pin 37 | PB5 β GPIO / I2C1_SMBA |
| Pin 38 | PB6 β GPIO / I2C1_SCL |
| Pin 39 | PB7 β GPIO / I2C1_SDA |
| Pin 40 | BOOT0 β Boot mode selection |
| Pin 41 | PB8 β GPIO / CAN_RX |
| Pin 42 | PB9 β GPIO / CAN_TX |
| Pin 43 | VDD β Digital power supply |
| Pin 44 | VSS β Digital ground |
| Pin 45 | PC14 β GPIO / OSC32_IN |
| Pin 46 | PC15 β GPIO / OSC32_OUT |
| Pin 47 | PC13 β GPIO / RTC output |
| Pin 48 | VBAT β Battery backup 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
STM32F302CBT6 is suitable for 6 applications: Motor Control, Digital Power Conversion, Audio Processing, Industrial Automation, Medical Devices, Consumer Electronics.
Motor Control
The STM32F302CBT6 is ideal for motor control applications due to its high-speed 12-bit ADC (5 MSPS), comparators, and advanced PWM timers. The Cortex-M4 FPU accelerates field-oriented control (FOC) algorithms, enabling efficient and precise control of brushless DC (BLDC) and permanent magnet synchronous motors (PMSM). In a typical motor control system, the MCU reads phase currents and rotor position via the ADC, processes the FOC algorithm, and generates PWM signals to drive the inverter. The high-speed ADC ensures accurate current sensing, while the comparators provide overcurrent protection. The FPU reduces computation time for complex mathematical operations, allowing higher control loop frequencies and improved dynamic response. Compared to MCUs without an FPU, the STM32F302CBT6 can execute FOC algorithms with lower latency, reducing torque ripple and improving efficiency. Designers should ensure proper isolation between power and control stages and use dedicated PWM timers with dead-time insertion to prevent shoot-through.
Recommended
Digital Power Conversion
The STM32F302CBT6 is well-suited for digital power conversion applications such as switch-mode power supplies (SMPS) and DC-DC converters. Its high-speed ADC (5 MSPS) enables precise voltage and current sensing, while the comparators and PWM timers facilitate digital control loops. The Cortex-M4 FPU accelerates complex control algorithms like PID and predictive control, improving transient response and efficiency. In a typical digital power supply, the MCU samples the output voltage and current, computes the control signal, and adjusts the PWM duty cycle to maintain regulation. The high-speed ADC ensures minimal delay in the control loop, reducing output voltage ripple. The device's analog peripherals, including PGAs, allow direct interfacing with current sense resistors without external amplifiers. Compared to analog controllers, the STM32F302CBT6 offers flexibility for implementing advanced features like digital compensation and telemetry. Designers should pay attention to the ADC sampling timing and use appropriate filtering to minimize noise in the control loop.
Recommended
Audio Processing
The STM32F302CBT6 is suitable for audio processing applications due to its Cortex-M4 core with FPU and DSP instructions, which accelerate audio algorithms like filtering, equalization, and noise reduction. The high-speed ADC can sample audio signals at high rates, while the DAC (if available) can output processed audio. In a typical audio application, the MCU reads audio data from a microphone or line input, processes it using DSP algorithms, and outputs the result to a speaker or headphone. The FPU enables efficient implementation of floating-point filters, reducing quantization noise and improving audio quality. The device's low power consumption and small package make it suitable for portable audio devices. Compared to MCUs without an FPU, the STM32F302CBT6 can handle more complex audio processing tasks in real-time. Designers should ensure proper grounding and shielding to minimize noise in the audio signal path.
Recommended
Industrial Automation
The STM32F302CBT6 is used in industrial automation for applications like PLCs, sensors, and actuators. Its robust design, wide operating temperature range (-40Β°C to +85Β°C), and rich peripheral set make it suitable for harsh environments. The high-speed ADC and comparators enable precise analog signal acquisition and threshold detection. The Cortex-M4 core with FPU accelerates control algorithms for robotics and motion control. In a typical industrial sensor, the MCU reads analog signals from sensors, processes them, and communicates via interfaces like UART, SPI, or I2C. The device's multiple timers and PWM outputs can drive actuators and motors. Compared to general-purpose MCUs, the STM32F302CBT6 offers better analog performance and processing power, making it ideal for advanced industrial applications. Designers should consider using external protection components like TVS diodes and optocouplers for isolation in industrial environments.
Recommended
Medical Devices
The STM32F302CBT6 is used in medical devices such as patient monitors, infusion pumps, and diagnostic equipment. Its high-speed ADC and analog peripherals enable precise measurement of physiological signals like ECG and blood pressure. The Cortex-M4 core with FPU accelerates signal processing algorithms for filtering and analysis. In a typical patient monitor, the MCU samples ECG signals, processes them to detect abnormalities, and displays the results on a screen. The device's low power consumption is critical for battery-powered portable medical devices. Compared to MCUs without an FPU, the STM32F302CBT6 can handle more complex signal processing in real-time, improving diagnostic accuracy. Designers must ensure compliance with medical safety standards like IEC 60601 and use appropriate isolation and protection circuits.
Recommended
Consumer Electronics
The STM32F302CBT6 is used in consumer electronics like smart home devices, wearables, and gaming peripherals. Its small package, low power consumption, and rich peripheral set make it suitable for space-constrained designs. The high-speed ADC and comparators enable touch sensing and analog signal processing. The Cortex-M4 core with FPU accelerates user interface algorithms and audio processing. In a typical smart home device, the MCU reads sensor data, processes it, and communicates via Bluetooth or Wi-Fi modules. The device's multiple timers and PWM outputs can drive LEDs and buzzers. Compared to general-purpose MCUs, the STM32F302CBT6 offers better performance and analog capabilities, making it ideal for advanced consumer products. Designers should consider using low-power modes to extend battery life in portable devices.
Recommended
Recommended Products Summary
Engineering reference data for STM32F302CBT6 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | STM32F302CCT6 | STM32F302RBT6 | STM32F302C8T6 | GD32F303CBT6 | STM32F303CBT6 |
|---|---|---|---|---|---|---|
| Package | LQFP-48 (7x7 mm) | LQFP-48 (7x7 mm) - same | LQFP-64 (10x10 mm) - different | LQFP-48 (7x7 mm) - same | LQFP-48 (7x7 mm) - same | LQFP-48 (7x7 mm) - same |
| Brand | STMicroelectronics | STMicroelectronics | STMicroelectronics | STMicroelectronics | GigaDevice | STMicroelectronics |
| Core | ARM Cortex-M4 with FPU | ARM Cortex-M4 with FPU | ARM Cortex-M4 with FPU | ARM Cortex-M4 with FPU | ARM Cortex-M4 with FPU | ARM Cortex-M4 with FPU |
| Maximum Clock Frequency | 72 MHz | 72 MHz | 72 MHz | 72 MHz | 72 MHz | 72 MHz |
| Flash Memory | 128 KB | 256 KB | 128 KB | 64 KB | 128 KB | 128 KB |
| SRAM | 32 KB | 32 KB | 32 KB | 16 KB | 32 KB | 32 KB |
| ADC Sampling Rate | 5 MSPS | 5 MSPS | 5 MSPS | 5 MSPS | [DATA_NEEDED] | 5 MSPS |
| Supply Voltage Range | 2.0V to 3.6V | 2.0V to 3.6V | 2.0V to 3.6V | 2.0V to 3.6V | 2.6V to 3.6V | 2.0V to 3.6V |
Key Differentiators
- High-speed ADC with 5 MSPS sampling rate (vs STM32F103CBT6)
- Integrated programmable gain amplifiers (PGAs) (vs STM32F103CBT6)
- Floating-point unit (FPU) for faster math (vs STM32F103CBT6)
Design Notes
The STM32F302CBT6 operates from 2.0V to 3.6V. Use a 100nF decoupling capacitor on each VDD pin and a 4.7uF bulk capacitor on the main supply. For the VDDA pin, use a 1uF capacitor and a ferrite bead to isolate analog noise. Ensure the VSSA pin is connected to a clean analog ground.
For the LQFP-48 package, ensure proper solder paste stencil design to avoid bridging. Place the crystal oscillator close to the OSC_IN/OSC_OUT pins with load capacitors as specified in the datasheet. Keep the SWD interface traces short and shielded to prevent noise during debugging.
Do not leave unused pins floating; configure them as outputs or tie them to a defined level. Ensure the BOOT0 pin is properly pulled low for normal operation. When using the ADC, avoid routing digital traces near the analog input pins to minimize noise coupling.
Compliance Information
RoHS compliant per STMicroelectronics product page. Not AEC-Q100 qualified - this is a standard-grade MCU.