Shi HaoTian Harvey, Pan Yifei, Xu Lin, Feng Xueming, Wang Wenyu, Potluri Prasad, Hu Liangbing, Hasan Tawfique, Huang Yan Yan Shery
Department of Engineering, University of Cambridge, Cambridge, UK.
The Nanoscience Centre, University of Cambridge, Cambridge, UK.
Nat Mater. 2023 Nov;22(11):1294-1303. doi: 10.1038/s41563-023-01615-z. Epub 2023 Jul 27.
Textiles represent a fundamental material format that is extensively integrated into our everyday lives. The quest for more versatile and body-compatible wearable electronics has led to the rise of electronic textiles (e-textiles). By enhancing textiles with electronic functionalities, e-textiles define a new frontier of wearable platforms for human augmentation. To realize the transformational impact of wearable e-textiles, materials innovations can pave the way for effective user adoption and the creation of a sustainable circular economy. We propose a repair, recycle, replacement and reduction circular e-textile paradigm. We envisage a systematic design framework embodying material selection and biofabrication concepts that can unify environmental friendliness, market viability, supply-chain resilience and user experience quality. This framework establishes a set of actionable principles for the industrialization and commercialization of future sustainable e-textile products.
纺织品是一种基本的材料形式,广泛融入我们的日常生活。对更通用且与身体兼容的可穿戴电子产品的追求推动了电子纺织品(e-textiles)的兴起。通过赋予纺织品电子功能,电子纺织品为人类增强的可穿戴平台定义了一个新的前沿领域。为了实现可穿戴电子纺织品的变革性影响,材料创新可为用户的有效采用以及可持续循环经济的创建铺平道路。我们提出一种修复、回收、替换和减少的循环电子纺织品范式。我们设想一个体现材料选择和生物制造概念的系统设计框架,该框架能够统一环境友好性、市场可行性、供应链弹性和用户体验质量。这个框架为未来可持续电子纺织品产品的工业化和商业化确立了一套可操作的原则。