Construction of cross-scale hierarchical ordered biomimetic architectures enabled by a fluid shear force field-assisted sacrificial template method

Abstract

Nature contains biological tissues like pearl layers, muscles, and bones with multiscale, multilevel ordered structures, challenging biomimetic material fabrication. This study introduces a versatile method combining cellulose nanocrystal (CNC) shear-induced orientation under fluid forces with DLP 3D printing to create 3D multilevel ordered biomimetic architectures. Using cancellous bone's trabecular branching geometry as a model, a DLP-printed GelMA sacrificial template-complementary to the target structure and enzymatically degradable-was filled with CNC/hyaluronic acid methacrylate (CNC/HAMA) bioink. Within the template's channels, CNCs and HAMA chains oriented along fluid shear forces, forming three-pronged macroscopic architecture mimicking bone trabeculae. Micro/nanoscale analysis showed a Hermans orientation factor of ~0.76 for CNC-HAMA synergistic alignment, with CNCs achieving ~70% orientation, enabling ordered nanoscale arrangement. Oriented CNC-HAMA fibers further established microscale order.This approach bridges complex macroscopic geometry with a 3D cross-scale hierarchical ordered alignment, effectively replicating natural tissues' multilevel structure and enhancing mechanical properties compared to unstructured counterparts. It provides a robust strategy for effectively controlling 3D molecular orientation within the confined 3D-printed macroscopic structures.

Supplementary files

Article information

Article type
Communication
Submitted
15 Aug 2025
Accepted
19 Dec 2025
First published
20 Dec 2025

Mater. Horiz., 2026, Accepted Manuscript

Construction of cross-scale hierarchical ordered biomimetic architectures enabled by a fluid shear force field-assisted sacrificial template method

Y. Wei, W. Gao, Q. Wei, H. Guo, L. Wang, Z. Jiao, X. Yuan and J. Zhao, Mater. Horiz., 2026, Accepted Manuscript , DOI: 10.1039/D5MH01575H

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