Literature DB >> 17472904

A novel optical coherence tomography-based micro-indentation technique for mechanical characterization of hydrogels.

Ying Yang1, Pierre O Bagnaninchi, Mark Ahearne, Ruikang K Wang, Kuo-Kang Liu.   

Abstract

Depth-sensing micro-indentation has been well recognized as a powerful tool for characterizing mechanical properties of solid materials due to its non-destructive approach. Based on the depth-sensing principle, we have developed a new indentation method combined with a high-resolution imaging technique, optical coherence tomography, which can accurately measure the deformation of hydrogels under a spherical indenter at constant force. The Hertz contact theory has been applied for quantitatively correlating the indentation force and the deformation with the mechanical properties of the materials. Young's moduli of hydrogels estimated by the new method are comparable with those measured by conventional depth-sensing micro-indentation. The advantages of this new method include its capability to characterize mechanical properties of bulk soft materials and amenability to perform creeping tests. More importantly, the measurement can be performed under sterile conditions allowing non-destructive, in situ and real-time investigations on the changes in mechanical properties of soft materials (e.g. hydrogel). This unique character can be applied for various biomechanical investigations such as monitoring reconstruction of engineered tissues.

Mesh:

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Year:  2007        PMID: 17472904      PMCID: PMC2396212          DOI: 10.1098/rsif.2007.1044

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  10 in total

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5.  Real-time, ultrahigh-resolution, optical coherence tomography with an all-fiber, femtosecond fiber laser continuum at 1.5 microm.

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6.  Characterizing the viscoelastic properties of thin hydrogel-based constructs for tissue engineering applications.

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  10 in total
  14 in total

Review 1.  Taking a deep look: modern microscopy technologies to optimize the design and functionality of biocompatible scaffolds for tissue engineering in regenerative medicine.

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6.  Magnetomotive Optical Coherence Elastography for Magnetic Hyperthermia Dosimetry Based on Dynamic Tissue Biomechanics.

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7.  Measurement of viscoelastic properties in multiple anatomical regions of acute rat brain tissue slices.

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8.  Keeping an eye on decellularized corneas: a review of methods, characterization and applications.

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Authors:  Kyle J Edmunds; Paolo Gargiulo
Journal:  Eur J Transl Myol       Date:  2015-03-11
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