Song Kaidong, Zhou Jingyuan, Wei Chen, Ponnuchamy Ashok, Bappy Md Omarsany, Liao Yuxuan, Jiang Qiang, Du Yipu, Evans Connor J, Wyatt Brian C, O' Sullivan Thomas, Roeder Ryan K, Anasori Babak, Hoffman Anthony J, Jin Lihua, Duan Xiangfeng, Zhang Yanliang
Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, IN, 46556, USA.
Chemistry and Biochemistry Department, University of California Los Angeles, Los Angeles, CA, 90095, USA.
Adv Mater. 2025 Mar;37(11):e2414203. doi: 10.1002/adma.202414203. Epub 2025 Feb 9.
Stretchable electronics capable of conforming to nonplanar and dynamic human body surfaces are central for creating implantable and on-skin devices for high-fidelity monitoring of diverse physiological signals. While various strategies have been developed to produce stretchable devices, the signals collected from such devices are often highly sensitive to local strain, resulting in inevitable convolution with surface strain-induced motion artifacts that are difficult to distinguish from intrinsic physiological signals. Here all-printed super stretchable strain-insensitive bioelectronics using a unique universal gradient interface (UGI) are reported to bridge the gap between soft biomaterials and stiff electronic materials. Leveraging a versatile aerosol-based multi-materials printing technique that allows precise spatial control over the local stiffnesses with submicron resolution, the UGI enables strain-insensitive electronic devices with negligible resistivity changes under a 180% uniaxial stretch ratio. Various stretchable devices are directly printed on the UGI for on-skin health monitoring with high signal quality and near-perfect immunity to motion artifacts, including semiconductor-based photodetectors for sensing blood oxygen saturation levels and metal-based temperature sensors. The concept in this work will significantly simplify the fabrication and accelerate the development of a broad range of wearable and implantable bioelectronics for real-time health monitoring and personalized therapeutics.
能够贴合非平面和动态人体表面的可拉伸电子器件对于制造用于高保真监测各种生理信号的可植入和皮肤表面设备至关重要。虽然已经开发出各种策略来生产可拉伸设备,但从这些设备收集的信号通常对局部应变高度敏感,导致不可避免地与表面应变引起的运动伪影卷积,而这些伪影很难与内在生理信号区分开来。在此,报道了使用独特的通用梯度界面(UGI)的全印刷超可拉伸应变不敏感生物电子器件,以弥合软生物材料和硬电子材料之间的差距。利用基于气溶胶的多功能多材料印刷技术,该技术允许以亚微米分辨率对局部刚度进行精确的空间控制,UGI使得应变不敏感电子器件在180%的单轴拉伸比下具有可忽略不计的电阻率变化。各种可拉伸设备直接印刷在UGI上,用于皮肤表面健康监测,具有高信号质量和对运动伪影的近乎完美的免疫力,包括用于感测血氧饱和度水平的基于半导体的光电探测器和基于金属的温度传感器。这项工作中的概念将显著简化制造过程,并加速开发用于实时健康监测和个性化治疗的广泛的可穿戴和可植入生物电子器件。