Byun Sang-Hyuk, Kim Choong Sun, Agno Karen-Christian, Lee Simok, Li Zhuo, Cho Byung Jin, Jeong Jae-Woong
School of Electrical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.
Department of Materials Science, Fudan University, Shanghai, 200433, China.
Adv Mater. 2021 Mar;33(10):e2007239. doi: 10.1002/adma.202007239. Epub 2021 Jan 25.
Electronics with tunable shape and stiffness can be applied in broad range of applications because their tunability allows their use in either rigid handheld form or soft wearable form, depending on needs. Previous research has enabled such reconfigurable electronics by integrating a thermally tunable gallium-based platform with flexible/stretchable electronics. However, supercooling phenomenon caused in the freezing process of gallium impedes reliable and rapid bidirectional rigid-soft conversion, limiting the full potential of this type of "transformative" electronics. Here, materials and electronics design strategies are reported to develop a transformative system with a gallium platform capable of fast reversible mechanical switching. In this electronic system, graphene is used as a catalyst to accelerate the heterogeneous nucleation of gallium to mitigate the degree of supercooling. Additionally, a flexible thermoelectric device is integrated as a means to provide active temperature control to further reduce the time for the solid-liquid transition of gallium. Analytical and experimental results establish the fundamentals for the design and optimized operation of transformative electronics for accelerated bidirectional transformation. Proof-of-concept demonstration of a reconfigurable system, which can convert between rigid handheld electronics and a flexible wearable biosensor, demonstrates the potential of this design approach for highly versatile electronics that can support multiple applications.
具有可调节形状和刚度的电子产品可应用于广泛的领域,因为其可调性使其能够根据需要以刚性手持形式或柔软可穿戴形式使用。先前的研究通过将热可调的镓基平台与柔性/可拉伸电子产品集成,实现了这种可重构电子产品。然而,镓在凝固过程中产生的过冷现象阻碍了可靠且快速的双向刚性-柔性转换,限制了这类“变革性”电子产品的全部潜力。在此,报道了材料和电子产品设计策略,以开发一种具有能够快速可逆机械切换的镓平台的变革性系统。在这个电子系统中,石墨烯用作催化剂来加速镓的异质形核,以减轻过冷程度。此外,集成了一个柔性热电装置作为提供主动温度控制的手段,以进一步减少镓的固-液转变时间。分析和实验结果为加速双向转换的变革性电子产品的设计和优化操作奠定了基础。一个可重构系统的概念验证演示,该系统可以在刚性手持电子产品和柔性可穿戴生物传感器之间转换,证明了这种设计方法对于能够支持多种应用的高度通用电子产品的潜力。