Programming Earthen Materials’ Shape Retention with Synergistic Biopolymers for 3D Printing (2026-03)¶
, , , de Araujo Sabrina, Erk Kendra,
Journal Article - Advanced Functional Materials
Abstract
Additive manufacturing of bio-stabilized earthen materials offers a low-carbon, waste-free path to sustainable construction. Although various biopolymer additives have been used to improve printability, their ability to deliver cohesion, high mechanical strength, and shape retention in a unified formulation remains limited. We report a synergistic combination of biopolymers—xanthan gum (XG) and locust bean gum (LBG)—that meets all these requirements. XG and LBG form a reversible supramolecular gel network that couples strong mineral surface binding with enhanced internal structuration. Compared to single-polymer systems, XG–LBG mixtures exhibit four- to tenfold increases in yield stress, an order-of-magnitude higher storage modulus, and markedly improved thixotropic breakdown and recovery—key properties for extrusion-based additive manufacturing. To uncover the underlying interaction mechanisms, we develop an experimental workflow that integrates polymer rheology, sequential physicochemical characterization, and suspension rheology. This approach enables us to decouple the roles of polymer–polymer, polymer–clay, and clay–clay interactions. Based on these findings, we identify two critical characteristics of polymer-based rheology modifiers that improve buildability in 3D-printed earthen materials: a strong binding affinity to mineral surfaces and sufficient intrinsic gelation to maintain structural integrity during and after extrusion.
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6 References
- Carcassi Olga, Maierdan Yierfan, Akemah Tashania, Kawashima Shiho et al. (2024-03)
Maximizing Fiber-Content in 3D Printed Earth Materials:
Printability, Mechanical, Thermal and Environmental Assessments - Douba Ala, Badjatya Palash, Kawashima Shiho (2022-03)
Enhancing Carbonation and Strength of MgO Cement Through 3D Printing - Maierdan Yierfan, Armistead Samuel, Mikofsky Rebecca, Huang Qiqi et al. (2023-11)
Rheology and 3D Printing of Alginate Bio-Stabilized Earth Concrete - Maierdan Yierfan, Armistead Samuel, Seshadri Akul, Carcassi Olga et al. (2025-10)
Locust Bean Gum–Stabilized Kaolin-Rich Earthen Composites:
From On-Land to Underwater 3D Printing - Maierdan Yierfan, Zhao Diandian, Choksi Pooja, Garmonina Maria et al. (2024-05)
Rheology, 3D Printing, and Particle-Interactions of Xanthan-Gum-Clay Binder for Earth Concrete - Roussel Nicolas (2018-05)
Rheological Requirements for Printable Concretes
0 Citations
BibTeX
@article{maie_sesh_jacq_arau.2026.PEMSRwSBf3P,
author = "Yierfan Maierdan and Akul N. Seshadri and Yohan Jacquet and Sabrina Fazio de Araujo and Kendra A. Erk and Shiho Kawashima",
title = "Programming Earthen Materials’ Shape Retention with Synergistic Biopolymers for 3D Printing",
doi = "10.1002/adfm.74957",
year = "2026",
journal = "Advanced Functional Materials",
}
Formatted Citation
Y. Maierdan, A. N. Seshadri, Y. Jacquet, S. F. de Araujo, K. A. Erk and S. Kawashima, “Programming Earthen Materials’ Shape Retention with Synergistic Biopolymers for 3D Printing”, Advanced Functional Materials, 2026, doi: 10.1002/adfm.74957.
Maierdan, Yierfan, Akul N. Seshadri, Yohan Jacquet, Sabrina Fazio de Araujo, Kendra A. Erk, and Shiho Kawashima. “Programming Earthen Materials’ Shape Retention with Synergistic Biopolymers for 3D Printing”. Advanced Functional Materials, 2026. https://doi.org/10.1002/adfm.74957.