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用于无缝集成和环境适应性非接触交互的印刷共形透明磁阻传感器

Printed Conformal and Transparent Magnetoresistive Sensors for Seamless Integration and Environment-Resilient Touchless Interaction.

作者信息

Xu Rui, Oliveros Mata Eduardo Sergio, Cheng Fei, Pylypovskyi Oleksandr V, Zhang Qihao, Das Proloy Taran, Zabila Yevhen, Bezsmertna Olha, Yang Jun, Wang Xiaotao, Lehmann Sebastian, Guo Lin, Hübner René, Ganss Fabian, He Ran, Illing Rico, Nielsch Kornelius, Makarov Denys

机构信息

Institute of Ion Beam Physics and Materials Research, Helmholtz-Zentrum Dresden-Rossendorf e.V., Bautzner Landstrasse 400, Dresden 01328, Germany.

Xi'an Rare Metal Materials Institute Co., Ltd., Xi'an 710016, P. R. China.

出版信息

ACS Nano. 2025 Jun 17;19(23):21891-21903. doi: 10.1021/acsnano.5c07664. Epub 2025 Jun 5.

DOI:10.1021/acsnano.5c07664
PMID:40468865
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12177943/
Abstract

Combination of conformability and transparency is crucial for realizing the full capabilities of printed magnetoresistive sensors in cutting-edge technologies designed to blend into their surroundings and applications. However, achieving this poses a critical challenge due to conflicting requirements: magnetic nanowires optimized for deformability exhibit a tendency to cluster, thus compromising transparency. To balance this trade-off, we leverage magnetic fields to manipulate nanowires, simultaneously initiating alignment and pinning effects. These together ensure a uniform and anisotropic distribution across extensive areas, enhancing the sensor transparency (about 85%). Further, we harness the clustering tendency, repurposing it to create local entanglements that enhance mechanical durability against both bending (with a curvature radius of about 110 μm) and stretching (with 80% tensile strain) and result in stable performance during 10,000 magnetization cycles. With the anisotropic design, the printed sensors achieve high out-of-plane sensitivity, distinguishing them from traditional film-based counterparts with a predominant in-plane response. These sensors do not require physical contact during operation, fostering hygienic and safer interaction. Their robust performance under environmental interference (e.g., dust, liquid, and moisture) makes them versatile for real-world use. The above innovations position our sensor as an important driver across numerous emerging applications, e.g., touchless interactive transparent displays and integrated multifunctional windows.

摘要

对于在旨在融入周围环境和应用的前沿技术中充分发挥印刷磁阻传感器的全部功能而言,柔韧性和透明度的结合至关重要。然而,由于相互冲突的要求,实现这一点面临着重大挑战:为可变形性优化的磁性纳米线有聚集的趋势,从而影响透明度。为了平衡这种权衡,我们利用磁场来操纵纳米线,同时引发排列和钉扎效应。这些共同确保了在大面积上的均匀和各向异性分布,提高了传感器的透明度(约85%)。此外,我们利用聚集趋势,将其重新用于创建局部缠结,从而增强对弯曲(曲率半径约为110μm)和拉伸(80%拉伸应变)的机械耐久性,并在10000次磁化循环中保持稳定性能。通过各向异性设计,印刷传感器实现了高面外灵敏度,这使其与主要具有面内响应的传统薄膜传感器有所不同。这些传感器在运行过程中不需要物理接触,促进了卫生和更安全的交互。它们在环境干扰(如灰尘、液体和湿气)下的稳健性能使其适用于实际应用。上述创新使我们的传感器成为众多新兴应用(如非接触式交互式透明显示器和集成多功能窗户)的重要推动因素。

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