Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Delft University of Technology

in Cooperation with on an Cooperation-Score of 37%

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Publications (5/5 displayed)

  • 2024Bone cell response to additively manufactured 3D micro-architectures with controlled Poisson's ratio13citations
  • 2023Auxeticity as a Mechanobiological Tool to Create Meta-Biomaterials20citations
  • 2022Quantifying nanoscale forces using machine learning in dynamic atomic force microscopy26citations
  • 2022Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy5citations
  • 2021Flexible piezoelectric AlN transducers buckled through package-induced preloading for mechanical energy harvesting42citations

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Co-Authors (by relevance)

  • Zadpoor, Amir, A.
  • Klimopoulou, Maria
  • Yarali, Ebrahim
  • Fratila-Apachitei, Lidy
  • Boukany, Pouyan
  • David, Kristen
  • Mirzaali, Mohammad, J.
  • Accardo, Angelo
  • Alijani, Farbod
  • Belardinelli, Pierpaolo
  • Chandrashekar, Abhilash
  • Aragón, Alejandro
  • Penning, Casper L.
  • Givois, Arthur
  • Blad, T. W. A.
  • Madaro, F.
  • Guido, F.
  • Vittorio, M. De
  • Tolou, Nima
  • Mariello, M.
  • Mastronardi, V. M.
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article

Bone cell response to additively manufactured 3D micro-architectures with controlled Poisson's ratio

  • Zadpoor, Amir, A.
  • Klimopoulou, Maria
  • Yarali, Ebrahim
  • Fratila-Apachitei, Lidy
  • Boukany, Pouyan
  • David, Kristen
  • Staufer, Urs
  • Mirzaali, Mohammad, J.
  • Accardo, Angelo
Abstract

<p>The Poisson's ratio and elastic modulus are two parameters determining the elastic behavior of biomaterials. While the effects of elastic modulus on the cell response is widely studied, very little is known regarding the effects of the Poisson's ratio. The micro-architecture of meta-biomaterials determines not only the Poisson's ratio but also several other parameters that also influence cell response, such as porosity, pore size, and effective elastic modulus. It is, therefore, very challenging to isolate the effects of the Poisson's ratio from those of other micro-architectural parameters. Here, we computationally design meta-biomaterials with controlled Poisson's ratios, ranging between -0.74 and +0.74, while maintaining consistent porosity, pore size, and effective elastic modulus. The 3D meta-biomaterials were additively manufactured at the micro-scale using two-photon polymerization (2PP), and were mechanically evaluated at the meso‑scale. The response of murine preosteoblasts to these meta-biomaterials was then studied using in vitro cell culture models. Meta-biomaterials with positive Poisson's ratios resulted in higher metabolic activity than those with negative values. The cells could attach and infiltrate all meta-biomaterials from the bottom to the top, fully covering the scaffolds after 17 days of culture. Interestingly, the meta-biomaterials exhibited different cell-induced deformations (e.g., shrinkage or local bending) as observed via scanning electron microscopy. The outcomes of osteogenic differentiation (i.e., Runx2 immunofluorescent staining) and matrix mineralization (i.e., Alizarin red staining) assays indicated the significant potential impact of these meta-biomaterials in the field of bone tissue engineering, paving the way for the development of advanced bone meta-implants. Statement of significance: We studied the influence of Poisson's ratio on bone cell response in meta-biomaterials. While elastic modulus effects are well-studied, the impact of Poisson's ratio, especially negative values found in architected biomaterials, remains largely unexplored. The complexity arises from intertwined micro-architectural parameters, such as porosity and elastic modulus, making it challenging to isolate the Poisson's ratio. To overcome this limitation, this study employed rational computational design to create meta-biomaterials with controlled Poisson's ratios, alongside consistent effective elastic modulus, porosity, and pore size. The study reveals that two-photon polymerized 3D meta-biomaterials with positive Poisson's ratios displayed higher metabolic activity, while all the developed meta-biomaterials supported osteogenic differentiation of preosteoblasts as well as matrix mineralization. The outcomes pave the way for the development of advanced 3D bone tissue models and meta-implants.</p>

Topics
  • impedance spectroscopy
  • pore
  • scanning electron microscopy
  • porosity
  • biomaterials
  • Poisson's ratio