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水分含量对生物材料和生物电子器件导电性的重要性。

The importance of water content on the conductivity of biomaterials and bioelectronic devices.

作者信息

Mostert A Bernardus

机构信息

Department of Physics, Swansea University, Singleton Park, SA2, 8PP, Wales, UK.

出版信息

J Mater Chem B. 2022 Sep 28;10(37):7108-7121. doi: 10.1039/d2tb00593j.

Abstract

Conductive biocompatible-, bioinspired- and biomaterials are increasing in importance, especially in bioelectronic applications where these materials are used in a variety of devices. Given the intended purpose of many of these devices is to interface with the human body, a pertinent issue is the effect of water from the environment on the electrical properties of the materials and devices. A researcher on biomaterials may currently not be aware, but the conductivity of these materials and device performances can be significantly altered with the presence of hydration in the environment. Examples will be given to highlight the problem that the conductivity of biomaterials can change by orders of magnitude depending on water content. Furthermore, case studies will be discussed in which control of the water content was key to understanding the underlying charge transport mechanism of conductive biomaterials. Examples of various devices and their response to hydration content will also be covered. Finally, this perspective will also mention the various methods of hydration control (including contrast studies) that can be used to perform careful work on conductive biomaterials and devices. Overall, water content should be considered an environmental variable as important as temperature to control for sound scientific investigation and to yield understanding of conductive biomaterials and bioelectronic devices.

摘要

导电生物相容性材料、仿生材料和生物材料的重要性日益增加,特别是在生物电子应用中,这些材料被用于各种设备。鉴于许多此类设备的预期用途是与人体相互作用,一个相关问题是环境中的水对材料和设备电学性能的影响。生物材料研究人员目前可能并未意识到,但环境中存在水合作用时,这些材料的导电性和设备性能会发生显著变化。将给出实例以突出生物材料的导电性会根据含水量改变几个数量级这一问题。此外,还将讨论一些案例研究,其中控制含水量是理解导电生物材料潜在电荷传输机制的关键。还将涵盖各种设备及其对水合含量的响应实例。最后,本观点还将提及可用于对导电生物材料和设备进行精细研究的各种水合控制方法(包括对比研究)。总体而言,对于可靠的科学研究以及对导电生物材料和生物电子设备的理解而言,含水量应被视为与温度同样重要的环境变量加以控制。

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