In HCI, there is a rapidly growing interest in prototyping with conductive bio-based materials. However, the methods for conductive making of bio-based materials to suit the diverse needs of makers remain underexplored. We introduce BioLIG, a fabrication framework that functionalizes affordable and optimized bio-based substrates with a conventional CO2 laser to create highly conductive traces for sensors and circuits. To illustrate the framework, we first contribute five bio-based materials: three sheets (paper-like, fabric-like, plastic-like) and two paints (lignin-ink, chitosan-stain). A formal electrical characterization of our conductors highlight that they surpass activated charcoal, are on par with carbon black, and one ink is even comparable with the most common synthetic material used for laser-induced graphene. Then, we present three biodegradable coatings that ensure functionality and durability and balance protection with controlled degradation. Next, we build upon our sheets, paints, and coatings to form multifunctional biodegradable biocomposites and implement six end-to-end applications. Lastly, we define three strategies of how the framework supports a circular making culture. BioLIG enables accessible, fast, and ecologically minded prototyping, opening new directions for designing electronics with intentional impermanence and environmental integration.

Quick Actions

Share

Share this page

ios_share

https://hci.top/en/papers/uist/206854/2025

AdRecommended

Learn AI Coding at CodeNow

open_in_newOpen DOI Link
DOI: https://doi.org/10.1145/3746059.3747669
At a Glance

Paper Snapshot

fact_check
dataset
Source
UIST
calendar_month
Year
2025
emoji_events
Award
No award tagged
group
Authors
8 authors
sell
Subtopics
Desktop 3D Printing & Personal Fabrication, Sustainable HCI
work
Professions
Makers & DIY Enthusiasts
article
Content Status
Abstract only
hub
Related Papers
8 related papers