Qian Shengtai, Wang Xingbei, Yan Wei
School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.
Front Optoelectron. 2023 Mar 22;16(1):3. doi: 10.1007/s12200-023-00058-3.
Flexible and wearable electronics represent paramount technologies offering revolutionized solutions for medical diagnosis and therapy, nerve and organ interfaces, fabric computation, robot-in-medicine and metaverse. Being ubiquitous in everyday life, piezoelectric materials and devices play a vital role in flexible and wearable electronics with their intriguing functionalities, including energy harvesting, sensing and actuation, personal health care and communications. As a new emerging flexible and wearable technology, fiber-shaped piezoelectric devices offer unique advantages over conventional thin-film counterparts. In this review, we survey the recent scientific and technological breakthroughs in thermally drawn piezoelectric fibers and fiber-enabled intelligent fabrics. We highlight the fiber materials, fiber architecture, fabrication, device integration as well as functions that deliver higher forms of unique applications across smart sensing, health care, space security, actuation and energy domains. We conclude with a critical analysis of existing challenges and opportunities that will be important for the continued progress of this field.
柔性可穿戴电子设备代表着至关重要的技术,为医学诊断与治疗、神经与器官接口、织物计算、医疗机器人和元宇宙提供了变革性的解决方案。压电材料和器件在日常生活中无处不在,凭借其诸如能量收集、传感与驱动、个人医疗保健和通信等引人入胜的功能,在柔性可穿戴电子设备中发挥着至关重要的作用。作为一种新兴的柔性可穿戴技术,纤维状压电设备相较于传统薄膜同类产品具有独特优势。在本综述中,我们审视了热拉伸压电纤维和基于纤维的智能织物方面的最新科技突破。我们重点介绍了纤维材料、纤维结构、制造、器件集成以及功能,这些功能在智能传感、医疗保健、空间安全、驱动和能源领域实现了更高形式的独特应用。我们最后对现有挑战和机遇进行了批判性分析,这些对于该领域的持续发展至关重要。