Stretchable electronic systems: Realization and applications

T. Loher, M. Seckel, R. Vieroth, C. Dils, C. Kallmayer, A. Ostmann, R. Aschenbrenner, H. Reichl
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引用次数: 19

Abstract

Commonplace electronic appliances for consumer or industrial use are still mostly rigid or at maximum flexible entities. The flexibility of foldable units like laptops or cell phones is usually realized through flexible circuit board (FCB) interconnectors. Although flexibility allows for considerably enhanced degrees of freedom in design, it is not compatible with more complex three dimensional curvatures and dynamics thereof. In the past years a number or approaches to realize stretchable electronic circuits in order to reach beyond unidirectional bending or folding of electronics have been reported. In the frame of the European Project STELLA a particular fabrication technology for stretchable electronic systems has been developed at Technische Universitaet Berlin. This technology, termed ?stretchable circuit board? (SCB) technology, is derived from conventional printed circuit board manufacturing. Stretchability of the boards is enabled by (i) using polyurethane instead of FR4 or polyimide as a carrier material of the copper structures and (ii) a meandering design of the Cu interconnects between commercial (rigid) electronic components. Such boards can be (once) extended by up to 300% before fracture of the Cu interconnections. For repeated elongation/relaxation cycles elongations with a few percent are allowable in order reach high cycle numbers. Electronic components are assembled after local application of a solder mask and surface finish for solderability. The electronic interconnection is established using a low temperature solder alloy (SnBi, Tm=142?C). For protection and enhanced system robustness all components are subsequently encapsulated within a polyurethane capping. Systems thus realized can be readily attached to different kinds of surfaces. Most interesting for various application cases is the easy attachment to textile substrates by a simple lamination process. The field use case studies of stretchable systems in the frame of the STELLA are mostly sensor applications in the field of medical electronics like a breathing frequency monitor for babies, a shoe insole pressure sensor for diabetes patients, or a band aid inlay to measure pressure and humidity of an acute wound when pressure therapy is applied. The latter application will be described in more detail since different aspects of bio-medical applications can be explained with this example. Another emerging field of applications is textile electronics, where it has been proven, that stretchable electronics can serve a versatile building blocks for complex electronic systems integrated in textiles.
可伸缩电子系统:实现与应用
用于消费或工业用途的普通电子设备仍然大多是刚性实体,或者至多是柔性实体。笔记本电脑或手机等可折叠设备的灵活性通常是通过柔性电路板(FCB)连接器实现的。虽然灵活性允许在设计中大大提高自由度,但它与更复杂的三维曲率及其动力学不兼容。在过去的几年里,为了超越电子产品的单向弯曲或折叠,已经报道了一些实现可拉伸电子电路的方法。在欧洲项目STELLA的框架下,柏林工业大学开发了一种用于可拉伸电子系统的特殊制造技术。这种技术被称为“可伸缩电路板”。(SCB)技术,源于传统的印刷电路板制造。电路板的可拉伸性是通过(i)使用聚氨酯代替FR4或聚酰亚胺作为铜结构的载体材料和(ii)商业(刚性)电子元件之间的铜互连的弯曲设计实现的。在铜互连断裂之前,这种板可以(一次)延长到300%。对于重复的延伸/松弛循环,为了达到高循环数,允许有几个百分点的延伸。电子元件是在局部涂上阻焊膜和表面抛光后组装的,以提高可焊性。采用低温钎料合金(SnBi, Tm=142℃)建立电子互连。为了保护和增强系统的稳健性,所有组件随后都封装在聚氨酯封盖内。这样实现的系统可以很容易地附着在不同种类的表面上。对于各种应用情况,最有趣的是通过简单的层压过程轻松附着在纺织品基材上。STELLA框架中可拉伸系统的现场使用案例研究主要是医疗电子领域的传感器应用,如婴儿呼吸频率监测器,糖尿病患者的鞋垫压力传感器,或用于测量压力治疗时急性伤口的压力和湿度的创可贴镶嵌。后一种应用将被更详细地描述,因为生物医学应用的不同方面可以用这个例子来解释。另一个新兴的应用领域是纺织电子,在那里它已经被证明,可拉伸的电子产品可以作为一个多功能的构建模块,用于集成在纺织品中的复杂电子系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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