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用于多功能应用的高拉伸性和导电性皱缩石墨烯/NiS薄膜的简易设计

Facile Design of Highly Stretchable and Conductive Crumpled Graphene/NiS Films for Multifunctional Applications.

作者信息

Weng Kangwei, Jing Qiji, Gao Jindong, Wang Weiguo, Zhang Chen, Wang Jun, Cheng Huanyu, Zhang Cheng

机构信息

Fujian Provincial Key Laboratory of Functional Marine Sensing Materials, College of Material and Chemical Engineering, Minjiang University, Fuzhou, 350108, P. R. China.

School of Materials Science and Engineering, Fujian University of Technology, Fuzhou, Fujian, 350506, P. R. China.

出版信息

Small Methods. 2025 Apr;9(4):e2401965. doi: 10.1002/smtd.202401965. Epub 2025 Jan 9.

Abstract

The cost-effective and scalable synthesis and patterning of soft nanomaterial composites with improved electrical conductivity and mechanical stretchability remains challenging in wearable devices. This work reports a scalable, low-cost fabrication approach to directly create and pattern crumpled porous graphene/NiS nanocomposites with high mechanical stretchability and electrical conductivity through laser irradiation combined with electrodeposition and a pre-strain strategy. With modulated mechanical stretchability and electrical conductivity, the crumpled graphene/NiS nanocomposite can be readily patterned into target geometries for application in a standalone stretchable sensing platform. By leveraging the electrical energy harvested from the kinetic motion from wearable triboelectric nanogenerator (TENG) and stored in micro-supercapacitor arrays (MSCAs) to drive biophysical sensors, the system is demonstrated to monitor human motions, body temperature, and toxic gas in the exposed environment. The material selections, design strategies, and fabrication approaches from this study provide functional nanomaterial composites with tunable properties for future high-performance bio-integrated electronics.

摘要

在可穿戴设备中,具有改善的导电性和机械拉伸性的软质纳米材料复合材料的经济高效且可扩展的合成与图案化仍然具有挑战性。这项工作报告了一种可扩展的低成本制造方法,通过激光辐照结合电沉积和预应变策略,直接创建并图案化具有高机械拉伸性和导电性的皱缩多孔石墨烯/NiS纳米复合材料。凭借调制的机械拉伸性和导电性,皱缩的石墨烯/NiS纳米复合材料可以很容易地图案化为目标几何形状,用于独立的可拉伸传感平台。通过利用从可穿戴摩擦纳米发电机(TENG)的动态运动中收集并存储在微型超级电容器阵列(MSCA)中的电能来驱动生物物理传感器,该系统被证明可以监测人体运动、体温以及暴露环境中的有毒气体。本研究中的材料选择、设计策略和制造方法为未来的高性能生物集成电子学提供了具有可调特性的功能性纳米材料复合材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aabf/12020346/4b6ce7e15159/SMTD-9-2401965-g009.jpg

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