TCS Pune

Raspberry Pi Pico RP2040

Development Board • RP2040

Raspberry Pi Pico RP2040

Dual-core Cortex-M0+ board with programmable I/O.

Technical specifications

Manufacturer
Raspberry Pi
MCU / Part
RP2040
Architecture
Dual-core Arm Cortex-M0+
Logic voltage
3.3 V
Recommended input
1.8–5.5 V VSYS
GPIO limits
3.3 V; GPIO is not 5 V tolerant
Flash
2 MB external on Pico
RAM
264 KB
Clock
133 MHz nominal
ADC
3 exposed 12-bit inputs + internal temperature channel
DAC
None
PWM / timers
16 PWM channels
Connectivity / buses
2 UART, 2 I²C, 2 SPI, USB, 8 PIO state machines
Programmer
USB UF2 / SWD
Debugger
SWD / debug probe

Pin reference

PinTypeMain functionsElectrical note
GPIO0–GPIO22GPIO/PeripheralUART/I²C/SPI/PWM/PIO mux3.3 V only
GPIO26–GPIO28Analog/GPIOADC0–ADC2Analog range 0–3.3 V
RUNControlActive-low chip enable/resetDo not drive above IOVDD
SWDIO/SWCLKDebugSWD interface3.3 V logic
VSYS/3V3_EN/3V3/GNDPowerInput/regulator/output/groundFollow power-path guidance

Features and compatibility

PIO, dual core, USB, low cost

Verify the exact board revision and manufacturer documentation before wiring. Never apply 5 V to a 3.3 V-only GPIO.

Open official datasheet/documentation ↗
Deep reference

Architecture, electrical limits and engineering guidance

Exact MCU / SoC
RP2040
Maximum GPIO current
3.3 V; GPIO is not 5 V tolerant
EEPROM / NVM
Use internal data flash/NVS/flash emulation where supported; include wear levelling and power-fail protection.
Interrupts / DMA
GPIO/peripheral interrupts are available. DMA capability is device-specific; confirm channels, request mapping and memory-access restrictions in the reference manual.
Sleep and power
Use the light/deep/standby modes offered by the device. Measure board current because regulators, LEDs and USB interfaces can dominate MCU sleep current.
Boot and programming
Confirm boot-mode pins before reset. Use the official bootloader/programmer and retain a recoverable debug/programming header.

Special and restricted pins

Reset, clock, debug, USB, crystal and analogue-reference pins have special electrical or boot functions. Avoid loading them until the boot sequence is understood.

Boot-strapping warnings

Check BOOT/RESET/programming pin truth tables before assigning peripherals; keep required pull resistors fitted.

I/O voltage warnings

3.3 V domain. Never exceed VDD + permitted injection limits; level-shift incompatible modules and share ground only where safe.

Memory map and registers

Start with the memory map: code flash, SRAM, peripheral registers and system/control space. Use vendor headers instead of hard-coded addresses, then study GPIO direction/output/input, clock-enable, interrupt and timer registers.

Board-selection guidance

Choose this device only after checking logic voltage, required interfaces, memory margin, timers/ADC resolution, debugging access, package availability and long-term tool support.

Common faults and troubleshooting

Not detected: verify data USB cable, driver, boot mode and target power. Upload failure: select the exact target and programmer. Unstable operation: inspect supply ripple, reset, clock and watchdog cause. Wrong readings: check reference voltage, grounding, pin multiplexing and calibration.

Interview and viva questions

What is the difference between an absolute maximum and an operating limit?

Absolute maximum prevents damage; reliable design stays within recommended operating conditions.

Why must peripheral clocks be enabled?

Many MCUs gate clocks to save power; registers may not operate until the peripheral clock is enabled.

Why preserve a debug interface?

It enables programming, breakpoints, fault inspection and production recovery.

What causes GPIO damage?

Over-voltage, excess source/sink current, negative injection, ESD or driving against another output.

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