Cellulose Nanofibers and Limestone Filler Enable High-Performance, Sustainable, and Cost-Efficient Printable Concrete (2026-02)¶
, , , Cubillos-Gamez David, Verma Akshat, , Runge Troy, , ,
Journal Article - Nature Communications
Abstract
3D-printed concrete requires carefully tuned rheological properties to ensure successful printing. Achieving a balance between printability, mechanical performance, sustainability and cost remains a challenge due to high cement content and extensive use of chemical admixtures typically required to meet rheological constraints. In this study, we develop a high-performance, low-carbon, cost-effective printable concrete using cellulose nanofibers and limestone filler. Incorporation of 0.3% cellulose nanofibers with 29% limestone filler replacement increases the static yield stress, storage modulus, and critical strain by 1213%, 255%, and 542%, respectively, with a moderate impact on viscosity compared to the reference mixture. Microstructural analyses indicate that the limestone filler accelerates hydration and enhances early-age stiffening, while the cellulose nanofibers increase static yield stress through colloidal interactions. Cellulose nanofibers enhance both compressive and flexural strength, allowing up to a 40% reduction in cement content while maintaining mechanical performance. Robotic 3D printing of a large-scale element demonstrates the scalability of the developed mixture and underscores its potential for large scale applications. Finally, techno-economic analysis and life-cycle assessment further demonstrate the environmental and economic benefits of the proposed mixtures.
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0 Citations
BibTeX
@article{wang_doub_raje_cubi.2026.CNaLFEHPSaCEPC,
author = "Yu Wang and Ala Eddin Douba and Naveenkumar Rajendran and David L. Cubillos-Gamez and Akshat Verma and Richard D. Bergman and Troy Runge and Jan Olek and Pablo D. Zavattieri and Jeffrey P. Youngblood",
title = "Cellulose Nanofibers and Limestone Filler Enable High-Performance, Sustainable, and Cost-Efficient Printable Concrete",
doi = "10.1038/s41467-026-69373-5",
year = "2026",
journal = "Nature Communications",
}
Formatted Citation
Y. Wang, “Cellulose Nanofibers and Limestone Filler Enable High-Performance, Sustainable, and Cost-Efficient Printable Concrete”, Nature Communications, 2026, doi: 10.1038/s41467-026-69373-5.
Wang, Yu, Ala Eddin Douba, Naveenkumar Rajendran, David L. Cubillos-Gamez, Akshat Verma, Richard D. Bergman, Troy Runge, Jan Olek, Pablo D. Zavattieri, and Jeffrey P. Youngblood. “Cellulose Nanofibers and Limestone Filler Enable High-Performance, Sustainable, and Cost-Efficient Printable Concrete”. Nature Communications, 2026. https://doi.org/10.1038/s41467-026-69373-5.