IoT Air Quality Sensor PCB

High-performance PCB powering smarter, healthier indoor environments.

IOT AIR QUALITY SENSOR

Background

A UK-based smart home brand approached us to design and manufacture a compact PCB for their next-generation indoor air quality monitoring device. The product needed to measure PM2.5, CO₂, temperature, and humidity, and transmit data to a mobile app via Wi-Fi + Bluetooth Low Energy (BLE).

The brand was under pressure to launch within 9 months, as competitors were already rolling out new devices with multi-sensor integration and cloud connectivity.

The Challenge: A Buyer's Pain Points

The client's initial prototype was a collection of breakout boards and modules, proving the concept but failing on key commercial requirements.

Miniaturization & Integration

Their in-house design was too large to fit the sleek product housing. PCB needed to stay under 45mm × 45mm.

Signal Interference

Wi-Fi and BLE modules interfered with the PM2.5 sensor’s analog readings in early prototypes.

Power Efficiency

Device must run for >6 months on two AA batteries, requiring ultra-low power design.

Certification Pressure

Must comply with CE, RoHS, and EN 55032 EMC standards for European market approval.

Vision & Design Goals

Our Solution

Our Design & Development Process

Our proven process ensured every aspect of the design was optimized for performance and reliability.

Step 1 – Requirements Analysis

  • Reviewed airflow model of housing to ensure correct placement of sensors

  • Defined power budget < 200 µA average consumption

  • Set certification requirements (CE, EMC EN 55032, RoHS) early in design

Step 2 – Schematic Design

  • Chose ESP32-WROOM module (FCC/CE pre-certified)

  • Added load switch to power sensors only when sampling

  • Designed I²C + UART interfaces for multi-sensor data acquisition

Step 3 – PCB Layout & Routing

  • 4-layer layout with dedicated ground plane

  • RF antenna trace tuned to 50Ω with controlled impedance

  • Analog + digital ground separated, joined at a single point near power input

  • PM2.5 sensor placed in airflow path, isolated from Wi-Fi antenna to reduce interference

Step 4 – SI/PI Analysis

  • Simulated RF interference coupling with PM2.5 sensor analog output → optimized ground shielding

  • Verified power ripple <15 mV at 3.3V rail during TX bursts

Step 5 – DFM/DFA Check

  • Ensured all components placed on top layer for single-pass SMT assembly

  • Verified stencil design for 0.4mm pitch ESP32 module

  • Connector alignment verified with client’s housing CAD

Step 6 – Prototyping & Testing

  • Produced 30 prototype boards

  • Thermal Test: PCB stayed <45°C under continuous Wi-Fi operation

  • Power Test: Achieved average current 180 µA → projected battery life ~14 months

  • EMC Pre-compliance Test: Passed EN 55032, margin ≥ 4 dB

Step 7 – Mass Production

  • Pilot run of 500 units delivered within 4 weeks

  • Scaling to 10,000 pcs/year, later expanding to 30,000 pcs/year with yield rate of 99.5%

IoT Air Quality Sensor PCB

Happy Clients!

You helped us cut through months of delays. Engineers solved our RF interference issue, optimized the PCB for ultra-low power, and made sure the first prototypes already passed EMC.Now in full production. Without you, we couldn’t have launched on time.
CTO, UK Smart Home Brand

How We Control Quality

Quality isn’t a checklist; it’s a culture. Our commitment is backed by:

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