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Understanding and Controlling Water Sensitivity in Mycelium Composites with Beeswax Coatings

delete2026-06-19
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OA
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S
Stefania Akromah
N
Neha Chandarana
M
Manaswini Acharya
S
Stephen J. Eichhorn *
DOI:10.1016/j.mtcomm.2026.115589delete
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Abstract

Abstract

En 中文
Mycelium composites (MCs) offer a sustainable alternative to synthetic materials, yet their wider use is limited by high moisture sensitivity and modest mechanical performance. This study investigates surface- and bulk-level water interactions in MCs and the effectiveness of beeswax coatings in addressing moisture sensitivity. Water contact angle (WCA) measurements revealed strong spatial variability. Although initial WCAs were high (>125°), regions with limited mycelial coverage exhibited rapid wetting due to exposure of hydrophilic lignocellulosic functional groups. Topographical analysis revealed that in mycelium-depleted areas with limited mycelial coverage, surface roughness contributes to a metastable wetting state that eventually transitions to full wetting. Dynamic Vapor Sorption (DVS) analysis revealed a Type II isotherm for MCs at high relative humidity, with moisture uptake in the high-RH region likely driven by capillary condensation within the mycelial network. A beeswax coating was applied to partially fill surface pores and defects of MC samples, serving as a moisture barrier. This led to increased surface hydrophobicity (~123° WCA) and reduced bulk moisture uptake by ~68 wt% after 5 hours and 64 wt% after 24 hours of immersion in water. Additionally, the beeswax coating increased the compressive strength of the mycelium by >50% through core confinement and load sharing.
Keywords:
Moisture Sensitivity
Water Contact Analysis (WCA)
Dynamic Vapour Sorption (DVS)
Cassie-Baxter Effect
Beeswax Coating
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Materials Today Communications cover
Materials Today Communications
IF:
4.5
Papers:
1.5W
Citations:
3.7W

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S
surface measurements systems ltd
Scholars:
2
Papers: 1
Citations: 0
U
university of bristol
Scholars:
3.3K
Papers: 1.6K
Citations: 1
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