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About this Symposium

Meeting 2027 TMS Annual Meeting & Exhibition
Symposium 3D Printing of Scaffolds and Porous Materials
Sponsorship TMS Functional Materials Division
TMS: Biomaterials Committee
Organizer(s) Changxue Xu, Texas Tech University
Usman Liaqat, National University of Sciences and Technology
Yifei Jin, University of Nevada Reno
Adele Carraḍ, University of Strasbourg, CNRS IPCMS
Zhengyi Zhang, Huazhong University of Science and Technology
Heinz Palkowski, Clausthal University of Technology
Jun Yin, Zhejiang University
Scope Biomaterials have been widely utilized in a variety of biomedical applications, such as tissue engineering and regenerative medicine, due to their inherent physical and chemical properties including biocompatibility, tunable mechanical properties and biodegradability, and hierarchical internal structures. Additive manufacturing, based on layer-by-layer fabrication mechanism, possesses critical advantages in fabrication of 3D structures of biomaterials for various biomedical applications, including complex geometries, heterogeneity, porosities, and incorporation of different growth factors. Typical 3D printing techniques used for biomaterials include inkjet printing, microextrusion, laser-assisted printing, stereolithography, to name a few. The most common biomaterials used in 3D printing are ceramics, polymers, and composites. The post-printing properties and microstructures are of great importance to the biomaterial functionality, such as mechanical properties, physical properties including swelling and degradation properties, pore size and porosity. In addition, with the unique structural characteristics and tunable properties, porous materials play an important role in drug delivery systems, antimicrobial applications, to name a few. The symposium combines advance in biomaterials for 3D printing of scaffolds and tissues, and advance in porous materials for biomedical applications.

Specific topics of interest include, but are not limited to:

  • Design, fabrication and characterization of 3D scaffolds
  • Characterization of post-printing properties of biomaterials
  • Antimicrobial applications
  • Bioink rheological properties and printability
  • Modeling and simulation of biomaterial properties
  • Fabrication of biomaterials-based heterogeneous structures
  • Novel biomaterials and 3D printing techniques for scaffold fabrication
  • Bioprinting of cellular structures and tissues
  • Cell-biomaterial interaction
  • Drug delivery systems
  • Theranostic platforms
  • Organ-on-chips
Abstracts Due 07/15/2026
Proceedings Plan Planned: None Selected

PRESENTATIONS APPROVED FOR THIS SYMPOSIUM INCLUDE



Additive Manufacturing of Bioabsorbable Mg Wire-Reinforced PLA-Matrix Composite Scaffolds for Bone Regeneration
Biochar Reinforcement of Sodium Alginate Inks for Direct Ink Writing of Multifunctional Composites
Design, Fabrication, and Characterization of a 3D-Printed Bioceramic Anterior Cruciate Ligament Interference Screw
Development and Characterization of a Photocurable Conductive Hydrogel for Cardiac Tissue Engineering via Vat Photopolymerization
Dispersion-Controlled High-Ceramic Functional Bioinks for Digital Light Processing of Bone Scaffolds
functionalized nanoparticles enhanced PLA for Bone Tissue Engineering
Infill-Controlled Porosity in Additively Manufactured Copper Wicks for Passive Thermal Management
Investigation of the Flexural Strength and Chewing Simulator Performance of Different TPMS Architectures with Varied Parameters for Jawbone Applications
Mechanical properties of resorbable open-structured metal tissues filled with functional polymers
Metal Matrix Composite Scaffolds Produced by Additive Manufacturing for Orthopedic Applications
New possibilities of casting techniques for production of composed as-cast foams for biodegradable applications


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