Program in Biomedical Science & Engineering, Inha University, 100 Inharo, Michuhol-gu, Incheon 22212, South Korea.
Department of Chemical Engineering, Inha University, 100 Inharo, Michuhol-gu, Incheon 22212, South Korea.
Biomacromolecules. 2024 Sep 9;25(9):5489-5511. doi: 10.1021/acs.biomac.4c00494. Epub 2024 Aug 28.
Emerging material interest in bioelectronic applications has highlighted natural melanin and its derivatives as promising alternatives to conventional synthetic conductors. These materials, traditionally noted for their adhesive, antioxidant, biocompatible, and biodegradable properties, have barely been used as conductors due to their extremely low electrical activities. However, recent studies have demonstrated good conductive properties in melanin materials that promote electronic-ionic hybrid charge transfer, attributed to the formation of an extended conjugated backbone. This review examines the multifunctional properties of melanin materials, focusing on their chemical and electrochemical synthesis and their resulting structure-property-function relationship. The wide range of bioelectronic applications will also be presented to highlight their importance and potential to expand into new design concepts for high-performance electronic functional materials. The review concludes by addressing the current challenges in utilizing melanin for biodegradable bioelectronics, providing a perspective on future developments.
新兴的生物电子应用材料兴趣凸显了天然黑色素及其衍生物作为传统合成导体的有前途的替代品。这些材料以其粘合性、抗氧化性、生物相容性和可生物降解性而闻名,但由于其极低的电活性,几乎没有被用作导体。然而,最近的研究表明,黑色素材料具有良好的导电性能,促进了电子-离子混合电荷转移,这归因于扩展共轭主链的形成。本综述考察了黑色素材料的多功能特性,重点介绍了它们的化学和电化学合成及其结构-性能-功能关系。还将介绍广泛的生物电子应用,以突出其重要性和潜力,为高性能电子功能材料扩展到新的设计概念。该综述最后讨论了利用黑色素用于可生物降解生物电子学的当前挑战,展望了未来的发展。