A micro:bit can demonstrate three smart-home ideas: a lamp that responds to room brightness, a fan switched through a relay, and an alarm triggered by light or movement. These are separate educational projects, not one verified integrated build. Treat the result as a low-voltage classroom prototype—not a certified security system or mains-powered home controller.
How the prototype works
Each function follows the same pattern: an input is read, code decides what to do, and an output responds. The micro:bit’s LED display can act as the light input; a relay can switch a separate battery-powered fan or lamp; and an alarm can use the display, sound, or a radio message to another micro:bit.
The Foundation defines a light sensor as “an input device that measures light levels.” Its LED display can perform that role, so a separate light sensor is not needed for the basic light-responsive demonstration. See the Micro:bit Educational Foundation’s sensors guide.
Choose the setup and parts
| Function | Controller and input | Output and key parts |
|---|---|---|
| Automatic light | One micro:bit can read ambient light using its LED display. | For a switched lamp, the cited MonkMakes activity uses a compatible relay and a separate battery supply for a low-voltage LED lamp. |
| Fan | A micro:bit controls the relay; the cited example toggles it after detecting a loud sound. | Compatible relay, low-voltage motor with fan, battery holder and battery. The fan circuit is separate from the micro:bit. |
| Light alarm | The Foundation’s radio example uses two micro:bits: one senses light and sends status messages; the other receives them. | The receiving micro:bit provides display and sound feedback. |
| Movement alarm | The Foundation’s PIR example uses an external movement sensor connected to a micro:bit, plus a second micro:bit as receiver. | The receiver can display and sound an alarm when it receives a movement message. |
Check compatibility for your chosen board and relay before assembling. The Foundation describes MakeCode as its blocks-based editor and provides a text-based Python editor; its light-alarm activity is available in both formats.
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- Box contains: 1 micro:bit v2.2, 1 USB cable, 1 battery holder, 2 AAA batteries, user guide
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Make a light-responsive lamp
In the MonkMakes nightlight example, the code compares the micro:bit’s light reading with a threshold and switches an LED lamp through a relay when the room is darker than that value. The example starts at 50; a lower threshold means the lamp waits for darker conditions. That number is a starting point, not a universal lux measurement or a guaranteed setting for every room. The MonkMakes Electronics Kit 2 instructions describe the relay-based nightlight and fan activities.
- Read the light level with the micro:bit’s LED display sensor.
- Compare the reading with a threshold in the program.
- When the reading falls below the selected threshold, switch the relay to turn on the low-voltage LED lamp; when it rises above the threshold, switch it off if that is the behavior you want.
- Try the program in the actual room. Use button A to display a reading in the Foundation’s light-alarm example, then adjust the threshold to suit the lighting conditions.
For Foundation-specific guidance on this sensing approach, see its Light alarm activity.
Rank #2
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Switch a fan with a relay
A micro:bit pin should not drive a motor directly. In the cited fan activity, the relay switches a separate battery-and-fan circuit. The example changes a variable when it detects a loud sound, then sets pin 0 high or low to control the relay. This is a useful switching pattern, but it does not provide a combined wiring diagram for the light, fan and alarm functions.
- Use a micro:bit-compatible relay specified for the project.
- Power the fan motor from its separate battery holder and battery through the relay circuit.
- Keep the micro:bit’s control connection distinct from the fan’s load circuit, and follow the relay and motor instructions.
The fan example is sound-triggered; you can treat the relay as a general switched output in your own code, but the cited instructions do not establish an integrated multi-function program or wiring plan.
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- Microbit V2.2 is an improved version of the original micro:bit featuring a built-in speaker, microphone, touch sensor and more computing power!
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- 25 individually-programmable LEDs, 2 programmable buttons
- Package includes: 1x micro:bit v2.2, 1x USB cable, 1x battery holder(Not Include Batteries)
Add a light alarm using radio
The Foundation’s light-alarm project uses two micro:bits. One monitors brightness and transmits a “lights on” or “lights off” message every 10 seconds. The receiving micro:bit reacts to the message: in the documented example, it shows an angry face and plays an alarm sound when it receives “lights on.” Both micro:bits must use the same radio group for messages to match.
- Program the sensing micro:bit to read the LED display’s light level and compare it with a threshold.
- Set the sender and receiver to the same radio group.
- Have the sensing device send the appropriate light-status message every 10 seconds.
- Program the receiving micro:bit to respond to the chosen message with display feedback and, if appropriate, sound.
- Adjust the threshold in the room where you will demonstrate it. The Foundation’s example starts at 50 and uses button A to display a reading that helps with adjustment.
The activity suggests changing the response—for example, triggering on the other light state—or combining the light alarm with another sensor. Its guide includes MakeCode and Python examples.
Rank #4
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- Specially designed this starter kit includes commonly used resistors, LEDs, sensors, LED segment display and more to get you started with 18 interesting projects at least.
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Extend the alarm with movement sensing
A PIR sensor can provide a movement input. In the Foundation’s movement-alarm activity, connect the sensor’s power to 3V, ground to GND, and signal output to pin 0. One micro:bit sends a movement or still message; a second receives it and provides the alarm response. Follow the specific sensor’s documentation, since sensitivity and timing may need adjustment. See the PIR movement alarm guide.
- Check whether the sensor is reporting movement or stillness before choosing the alarm condition.
- Test its sensitivity and timing in the intended demonstration area.
- Decide whether sound is suitable. The Foundation notes loud sounds as an accessibility consideration; a visual display response can be used alongside or instead of sound.
What this prototype can—and cannot—do
The cited project guides document these functions separately. They do not establish a single integrated wiring diagram or demonstrate that the combined system has been assembled and tested. Use the projects as building blocks, and develop and verify any combined low-voltage code and wiring carefully.
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The relay activities describe switching a separate battery-powered fan or LED lamp. They do not provide a validated procedure for mains wiring. Keep this project to suitable low-voltage educational circuits; do not use it in place of a smoke alarm, burglar alarm, or certified smart-home controller.
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