Designing with decay: From environmental transformation to programmed degradation in a yeast-cellulose biohydrogel for circular architectural applications
Journal article, 2026

As architectural design paradigms shift from century-lasting, fossil-based construction materials toward regenerative, biogenic solutions with much shorter life cycles, a novel opportunity opens for design with material temporality and transformation. Taking a fully biobased yeast-cellulose-alginate-glycerol composite hydrogel as a case, this study examines how physical and visual properties change under air, soil, and water exposure by measuring mass loss, shrinkage, deformation, embrittlement, and color change in manually and robotically extruded constructs from this material. The results reveal distinct patterns of swelling, contraction, structural distortion, surface brittleness, and chromatic shifts that affect the designs across different exposure conditions. Together, these patterns establish a preliminary knowledge basis for architectural design that could accommodate these transitions, demonstrated in a speculative, conceptual architectural design proposal leveraging transformation and decay as part of the design. By situating material temporality as informative rather than detrimental, the study exemplifies how environmentally responsive biomaterials can support circular architectural biodesign.

microbial hydrogels

circular architectural design

material lifecycle

biomaterials

biodegradation

Author

Constanza Quioza

Chalmers, Architecture and Civil Engineering

Malgorzata Zboinska

Chalmers, Architecture and Civil Engineering, Architectural theory and methods

Biotechnology Design

2977-9057 (ISSN)

Vol. 4 e10

Resource efficient renovation using a 3D printable material from underutilized biomass

Swedish Energy Agency (P2024-02409), 2025-01-01 -- 2026-06-30.

Swedish Energy Agency (P2022-000865), 2022-11-01 -- 2024-12-31.

Areas of Advance

Information and Communication Technology

Production

Materials Science

Driving Forces

Sustainable development

Subject Categories (SSIF 2025)

Bio Materials

Architecture

Design

DOI

10.1017/S2977905726100262

More information

Latest update

9/3/2026 8