State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Institute of Functional Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine Institute of Functional Materials, Donghua University, Research Base of Textile Materials for Flexible Electronics and Biomedical Applications (China Textile Engineering Society), Shanghai, 201620, P. R. China.
Department of Materials and Polymer Engineering, Faculty of Engineering, Hakim Sabzevari University, Sabzevar, 9617976487, Iran.
Adv Sci (Weinh). 2022 May;9(13):e2105146. doi: 10.1002/advs.202105146. Epub 2022 Feb 25.
Biodegradable electronics are considered as an important bio-friendly solution for electronic waste (e-waste) management, sustainable development, and emerging implantable devices. Elastic electronics with higher imitative mechanical characteristics of human tissues, have become crucial for human-related applications. The convergence of biodegradability and elasticity has emerged a new paradigm of next-generation electronics especially for wearable and implantable electronics. The corresponding biodegradable elastic materials are recognized as a key to drive this field toward the practical applications. The review first clarifies the relevant concepts including biodegradable and elastic electronics along with their general design principles. Subsequently, the crucial mechanisms of the degradation in polymeric materials are discussed in depth. The diverse types of biodegradable elastomers and gels for electronics are then summarized. Their molecular design, modification, processing, and device fabrication especially the structure-properties relationship as well as recent advanced are reviewed in detail. Finally, the current challenges and the future directions are proposed. The critical insights of biodegradability and elastic characteristics in the elastomers and gel allows them to be tailored and designed more effectively for electronic applications.
可生物降解电子产品被认为是解决电子垃圾(e-waste)管理、可持续发展和新兴植入设备问题的重要生物友好型解决方案。具有更高模仿人体组织机械特性的弹性电子产品,对于与人类相关的应用至关重要。可生物降解性和弹性的融合为下一代电子产品,特别是可穿戴和植入式电子产品,开创了一个新的范例。相应的可生物降解弹性材料被认为是推动该领域走向实际应用的关键。
本综述首先阐明了相关概念,包括可生物降解和弹性电子产品及其一般设计原则。随后,深入讨论了聚合物材料降解的关键机制。然后总结了用于电子设备的各种类型的可生物降解弹性体和凝胶。详细回顾了它们的分子设计、修饰、加工和器件制造,特别是结构-性能关系以及最新的进展。最后提出了当前的挑战和未来的方向。
弹性体和凝胶中的生物降解性和弹性特性的关键见解使它们能够更有效地针对电子应用进行定制和设计。