TCS Pune

BME280 Environmental Sensor

Sensor Module • Sensors

BME280 Environmental Sensor

Digital temperature, humidity and pressure sensor.

Technical specifications

Manufacturer
Bosch Sensortec / module vendor
MCU / Part
BME280
Architecture
Digital MEMS sensor
Logic voltage
1.8–3.6 V bare sensor; breakout dependent
Recommended input
Breakout dependent
GPIO limits
Do not apply 5 V to bare sensor pins
Flash
N/A
RAM
N/A
Clock
Host bus clock limits per datasheet
ADC
Internal sensing ADC
DAC
None
PWM / timers
None
Connectivity / buses
I²C or SPI
Programmer
N/A
Debugger
I²C/SPI logic analyser

Pin reference

PinTypeMain functionsElectrical note
VDD/VDDIOPowerCore/interface suppliesBare sensor voltage limits apply
SDA/SDIDigitalI²C data or SPI MOSIPull-up for I²C
SCL/SCKDigitalI²C/SPI clockLogic at VDDIO
SDODigitalSPI MISO / I²C address selectDo not float in I²C design
CSBDigitalSPI chip select / I²C mode selectSet for chosen bus
GNDPowerGroundCommon ground required

Features and compatibility

Pressure, humidity, temperature, low power

Many breakout boards include regulators and level shifting, but not all. Identify the exact module before using 5 V.

Open official datasheet/documentation ↗
Deep reference

Architecture, electrical limits and engineering guidance

Exact MCU / SoC
BME280
Maximum GPIO current
Do not apply 5 V to bare sensor pins
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

1.8–3.6 V bare sensor; breakout dependent 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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