Hou Yanbei, Zhang Hancen, Zhou Kun
Singapore Centre for 3D Printing, School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
Environmental Process Modeling Centre, Nanyang Environment and Water Research Institute, Nanyang Technological University, Singapore, 639798, Singapore.
Adv Sci (Weinh). 2025 Feb;12(7):e2411584. doi: 10.1002/advs.202411584. Epub 2024 Dec 24.
This paper addresses the trade-off between sensitivity and sensing range in strain sensors, while introducing additional functionalities through an innovative 4D printing approach. The resulting ultraflexible sensor integrates carbon nanotubes/liquid metal hybrids and iron powders within an Ecoflex matrix. The optimization of this composition enables the creation of an uncured resin ideal for Direct Ink Writing (DIW) and a cured sensor with exceptional electromechanical, thermal, and magnetic performance. Notably, the sensor achieves a wide linear strain range of 350% and maintains a stable Gauge Factor of 19.8, offering an ultralow detection limit of 0.1% strain and a rapid 83-ms response time. Beyond superior strain sensing capabilities, the sensor exhibits outstanding thermal endurance for temperatures exceeding 300 °C, enhanced thermal conductivity, and a consistent resistance-temperature relationship, making it well-suited for high-temperature applications. Moreover, the inclusion of iron particles provides magnetic responsiveness, enabling synergistic applications in location and speed detection, particularly in home care. Leveraging DIW facilitates the creation of complex-shaped sensors with multiple functional materials, significantly broadening the sensor's capabilities. This convergence of additive manufacturing and multifunctional materials marks a transformative step in advancing the performance of next-generation sensors across diverse domains.
本文探讨了应变传感器中灵敏度与传感范围之间的权衡,同时通过创新的4D打印方法引入了额外的功能。由此产生的超柔性传感器在Ecoflex基质中集成了碳纳米管/液态金属混合物和铁粉。这种成分的优化使得能够制造出一种未固化的树脂,非常适合直接墨水书写(DIW),以及一种具有卓越机电、热和磁性能的固化传感器。值得注意的是,该传感器实现了350%的宽线性应变范围,并保持19.8的稳定应变片系数,提供0.1%应变的超低检测限和83毫秒的快速响应时间。除了卓越的应变传感能力外,该传感器在超过300°C的温度下表现出出色的热耐久性、增强的热导率以及一致的电阻-温度关系,非常适合高温应用。此外,铁颗粒的加入提供了磁响应性,使其能够在位置和速度检测中实现协同应用,特别是在家庭护理中。利用DIW有助于制造具有多种功能材料的复杂形状传感器,显著拓宽了传感器的功能。增材制造和多功能材料的这种融合标志着在提升下一代传感器在不同领域的性能方面迈出了变革性的一步。