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Implementation of microcontroller board on a sustainable and degradable PLA/flax composite substrate: a case study
Attila Géczy1,2, Dániel Piffkó1, Richárd Berényi1
1Department of Electronics Technology, Faculty of Electronic Engineering and Informatics, Budapest University of Technology and Economics, Budapest, Hungary.
This study introduces a biodegradable polylactic-acid/flax composite for printed circuit boards (PCBs), offering a sustainable alternative to FR4. While functional, the eco-friendly PCB material shows reduced durability under stress testing.
Area of Science:
- Materials Science
- Electronics Engineering
- Environmental Science
Background:
- The microelectronics sector faces significant e-waste challenges.
- Traditional Flame Retardant Class 4 (FR4) substrates contribute to environmental pollution.
- There is a growing need for sustainable and biodegradable materials in electronics.
Purpose of the Study:
- To develop and demonstrate a novel biodegradable polylactic-acid/flax-composite substrate for printed circuit board (PCB) applications.
- To assess the feasibility of using natural, bio-based materials as a sustainable alternative to FR4.
- To evaluate the performance and limitations of the novel substrate in a functional microcontroller board.
Main Methods:
- Fabrication of a copper-clad polylactic-acid/flax pre-preg.
- Implementation of a demonstrator microcontroller board based on the Arduino Nano design.
- Processing using subtractive printed wiring technology and surface mounting assembly.
- Performance evaluation through signal analysis and Highly Accelerated Stress Testing (HAST).
Main Results:
- A functional microcontroller board was successfully created on the novel biodegradable substrate.
- PCB production yield was approximately 50%, with successful low-frequency signal analysis comparable to FR4.
- HAST revealed significant limitations: ~30% weight loss and an 80% reduction in ultimate strength after stress tests.
Conclusions:
- The polylactic-acid/flax composite offers a highly sustainable alternative, potentially substituting ~95 vol% and ~90 wt% of traditional substrate materials.
- While demonstrating proof-of-concept, the material requires further development to improve its mechanical strength and durability for widespread adoption.
- This research paves the way for more environmentally friendly electronics manufacturing, addressing e-waste concerns.
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