A Piezo‐Mimetic Ionic Hydrogel Harnessing Joint Motion for Cartilage Repair
A piezo‐mimetic ionic hydrogel converts mechanical deformation into bioactive ionic currents via stress‐induced asymmetric ion migration. Coupled with sustained Mg2+ release, this mechano‐electrochemical platform bridges mechanical loading and cellular signaling, enabling load‐adaptive stimulation and enhanced cartilage regeneration. ABSTRACT Articular
Chenyuan Gao +14 more
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Numerical analysis of three-dimensional middle ear and inner ear based on nonlinear and viscoelastic constitutive relations. [PDF]
Yao W, Wang J, Ye J.
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Biomechanics of the tooth cervical region investigated using 3D digital image correlation, micro CT, and finite element analysis. [PDF]
Elnatan M +4 more
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Stress distribution in Class I composite restorations with polyethylene fiber wallpapering under different occlusal loads: A three-dimensional finite element analysis. [PDF]
Tabtila U +4 more
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Can the Finite Element Method Be Applied to Patient-Specific Implant Evaluation? [PDF]
Lee S +5 more
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Effects of proactive or synchronous anchorage preparation of posterior teeth during anterior en masse retraction with clear aligners: a three-dimensional finite element study. [PDF]
Li R +16 more
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Evaluating the impact of attachment designs on canine derotation in clear aligner therapy: a finite element analysis. [PDF]
Kulkarni P, Batra P, Vaiid N.
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Abstract Motivation Finite-element analysis (FEA) is widely used as a standard tool for stress and deformation analysis of solid structures, including human tissues and organs. For instance, FEA can be applied at a patient-specific level to assist in medical diagnosis and treatment planning, such as ...
Minliang Liu, Liang Liang
exaly +4 more sources

