Complex Materials, Department of Materials, ETH Zürich, 8093, Zürich, Switzerland.
Soft Transducers Laboratory, EPFL Lausanne, 2000, Neuchâtel, Switzerland.
Sci Rep. 2023 Feb 3;13(1):1962. doi: 10.1038/s41598-023-29261-0.
The strong clinical demand for more accurate and personalized health monitoring technologies has called for the development of additively manufactured wearable devices. While the materials palette for additive manufacturing continues to expand, the integration of materials, designs and digital fabrication methods in a unified workflow remains challenging. In this work, a 3D printing platform is proposed for the integrated fabrication of silicone-based soft wearables with embedded piezoresistive sensors. Silicone-based inks containing cellulose nanocrystals and/or carbon black fillers were thoroughly designed and used for the direct ink writing of a shoe insole demonstrator with encapsulated sensors capable of measuring both normal and shear forces. By fine-tuning the material properties to the expected plantar pressures, the patient-customized shoe insole was fully 3D printed at room temperature to measure in-situ gait forces during physical activity. Moreover, the digitized approach allows for rapid adaptation of the sensor layout to meet specific user needs and thereby fabricate improved insoles in multiple quick iterations. The developed materials and workflow enable a new generation of fully 3D printed soft electronic devices for health monitoring.
临床对更准确和个性化健康监测技术的强烈需求,呼唤着可添加制造的可穿戴设备的发展。虽然添加制造的材料组合不断扩大,但在统一的工作流程中整合材料、设计和数字制造方法仍然具有挑战性。在这项工作中,提出了一种 3D 打印平台,用于集成制造具有嵌入式压阻传感器的基于硅酮的软可穿戴设备。基于硅酮的油墨中含有纤维素纳米晶体和/或炭黑填料,经过精心设计,用于直接写入带有封装传感器的鞋垫演示器,这些传感器能够测量正常和剪切力。通过将材料特性调整到预期的足底压力,定制的患者鞋垫可以在室温下完全 3D 打印,以在身体活动期间测量原位步态力。此外,数字化方法允许快速调整传感器布局以满足特定用户的需求,从而在多个快速迭代中制造出改进的鞋垫。所开发的材料和工作流程为健康监测的新一代全 3D 打印软电子产品提供了可能。