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生物材料中的挠曲电及其在生物医学研究中的潜在应用。

Flexoelectricity in Biological Materials and Its Potential Applications in Biomedical Research.

作者信息

Mohammadkhah Melika, Slavkovic Vukasin, Klinge Sandra

机构信息

Technische Universität Berlin, Institute of Mechanics, Chair of Structural Mechanics and Analysis, Straße des 17. Juni 135, 10623 Berlin, Germany.

Department of Applied Mechanics and Automatic Control, Faculty of Engineering, University of Kragujevac, Sestre Janjić Street, Nr. 6, 34000 Kragujevac, Serbia.

出版信息

Bioengineering (Basel). 2025 May 28;12(6):579. doi: 10.3390/bioengineering12060579.

Abstract

Flexoelectricity arises in materials under strain gradients, which can be particularly significant for situations in which the existence of other electromechanical properties is absent or generating large flexoelectric properties is achievable. This effect has also been observed in some biological materials, whose understanding can hugely help to further enhance our understanding of vital biological processes like mechanotransduction, as well as the development of applications in regenerative medicine and drug delivery. While the field of flexoelectricity as a relevant topic in biological materials is relatively new and still developing, the current study aims to review available results on flexoelectric effects in biological materials such as cells and cell membranes, hearing mechanisms, and bone, and their potential applications in biomedical research. Therefore, we first provide a brief background on two main electromechanical couplings (piezoelectricity and flexoelectricity) and further, how flexoelectricity has been experimentally and theoretically identified. We then review flexoelectricity in different biological materials as the main aim of the current study. Within that, we provide additional emphasis on the influence of this effect on bone and bone remodeling. In particular, the study outlines current limitations and provides potential directions for future work, emphasizing the crucial role in the development of next-generation electromechanical devices and optimizing their function in the area of biomedical research.

摘要

挠曲电现象出现在存在应变梯度的材料中,对于不存在其他机电特性或能够产生大挠曲电特性的情况而言,这种现象可能尤为显著。在一些生物材料中也观察到了这种效应,对其的理解有助于极大地增进我们对诸如机械转导等重要生物过程的理解,以及再生医学和药物递送领域应用的发展。虽然挠曲电作为生物材料中的一个相关主题领域相对较新且仍在发展,但当前的研究旨在综述有关生物材料(如细胞和细胞膜、听觉机制及骨骼)中挠曲电效应及其在生物医学研究中的潜在应用的现有结果。因此,我们首先简要介绍两种主要的机电耦合(压电性和挠曲电),以及挠曲电是如何通过实验和理论确定的。然后,作为当前研究的主要目的,我们综述不同生物材料中的挠曲电现象。在此范围内,我们特别强调这种效应对骨骼及骨重塑的影响。具体而言,该研究概述了当前的局限性,并为未来的工作提供了潜在方向,强调了其在下一代机电设备开发以及优化其在生物医学研究领域功能方面的关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81bb/12190139/ea58d2dbf0e8/bioengineering-12-00579-g001.jpg

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