Machine Learning–Assisted Bio‐Interfacial Engineering Resolves Structural–Functional Conflicts in Nanocomposites

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Machine Learning–Assisted Bio‐Interfacial Engineering Resolves Structural–Functional Conflicts in Nanocomposites
Title:
Machine Learning–Assisted Bio‐Interfacial Engineering Resolves Structural–Functional Conflicts in Nanocomposites
Journal Title:
Advanced Materials
Keywords:
Publication Date:
25 March 2026
Citation:
Wang, H., Chen, X., Yan, P., Liu, S., Yan, B., Kong, J., Teo, S. L., Jin, K., Zhang, J., Lam, P. K., & He, C. (2026). Machine Learning–Assisted Bio‐Interfacial engineering resolves Structural–Functional conflicts in nanocomposites. Advanced Materials, 38(24), e18806. https://doi.org/10.1002/adma.202518806
Abstract:
ABSTRACT Delivering nanocomposites that combine high strength, toughness, and multifunctionality remains a major challenge, as conventional trial‐and‐error and design‐of‐experiments approaches cannot efficiently resolve trade‐offs in high‐dimensional design spaces. We introduce a machine‐learning–assisted bio‐interfacial design framework integrating Gaussian‐process surrogates, Pareto set learning, and active learning to explore composition–processing spaces under calibrated uncertainty. The workflow converges after nearly 60 experiments, reducing experimental count, project duration, and cost by 74%–85% relative to conventional methods, thereby accelerating design cycles and expanding Pareto coverage. Guided by this approach, we realize mycelium–graphene composites with strength >58 MPa, toughness >6 MJ/m 3 , and levitation >0.14 mm, showing that strength can be maintained while toughness is significantly enhanced and multifunctionality unlocked. Mechanistic analyses reveal nanosheet‐pinned, hierarchically entangled interfaces where hydrogen‐bonded junctions enable reversible nanosheet sliding, crack deflection, and adaptive stress transfer. These architectures impart levitation control, laser‐driven actuation, and self‐healing. Extension to MXene systems yields composites with enhanced resilience and electromagnetic interference shielding above 40 dB, confirming the generality of the strategy. Together, these advances define a scalable and sustainable paradigm for the accelerated discovery of robust, multifunctional nanocomposites.
License type:
Attribution 4.0 International (CC BY 4.0)
Funding Info:
This research / project is supported by the National Research Foundation Singapore - Low-carbon energy research Phase 2
Grant Reference no. : U2307D4001
Description:
This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. © 2026 The Author(s). Advanced Materials published by Wiley-VCH GmbH
ISSN:
0935-9648
1521-4095