A CMMT/APU Hydrogel-Based Triboelectric Nanogenerator for High-Precision Self-Powered Human-Motion Monitoring

IF 5.45 Q1 Physics and Astronomy
Xiuchang Yang, Jikai Si
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引用次数: 0

Abstract

Developing flexible self-powered sensors capable of simultaneously converting biomechanical stimuli into electrical signals and supporting wearable motion analysis is of considerable importance for next-generation intelligent monitoring systems. In this work, a conductive montmorillonite/amphiphilic polyurethane (CMMT/APU) hydrogel-based triboelectric nanogenerator (CA-TENG) is constructed by integrating a conductive montmorillonite-modified hydrogel electrode with a contact-separation triboelectric configuration. Polytetrafluoroethylene (PTFE) and nylon are selected as the triboelectric layers, while the CMMT/APU hydrogel is employed as the flexible conductive electrode. Owing to the cooperative effect between conductive montmorillonite and the amphiphilic polyurethane network, the hydrogel exhibits good flexibility, structural stability, and mechanical adaptability, and the composition containing 5% CMMT presents the most suitable tensile performance for device fabrication. The optimized CA-TENG delivers a peak open-circuit voltage ([Formula: see text] of 777[Formula: see text]V, a short-circuit current ([Formula: see text] of 39[Formula: see text][Formula: see text]A, and a transferred charge ([Formula: see text] of 250[Formula: see text]nC, together with a maximum output power of 598[Formula: see text][Formula: see text]W. Moreover, the device shows stable output under different working frequencies, separation distances, and humidity conditions, and it can effectively distinguish walking, running, jumping, and joint-bending motions, demonstrating strong potential for self-powered wearable-motion monitoring and biomechanical analysis.
用于高精度自供电人体运动监测的CMMT/APU水凝胶摩擦电纳米发电机
开发能够同时将生物力学刺激转换为电信号并支持可穿戴运动分析的柔性自供电传感器对于下一代智能监测系统非常重要。在这项工作中,通过将导电蒙脱土修饰的水凝胶电极与接触分离的摩擦电结构相结合,构建了导电蒙脱土/两亲性聚氨酯(CMMT/APU)水凝胶基摩擦电纳米发电机(CA-TENG)。选用聚四氟乙烯(PTFE)和尼龙作为摩擦电层,采用CMMT/APU水凝胶作为柔性导电电极。由于导电蒙脱土与两亲性聚氨酯网络的协同作用,水凝胶具有良好的柔韧性、结构稳定性和机械适应性,其中含5% CMMT的组合物具有最适合器件制造的拉伸性能。优化后的CA-TENG的峰值开路电压([公式:见文])为777 V,短路电流([公式:见文])为39[公式:见文][公式:见文]a,转移电荷([公式:见文])为250 nC,最大输出功率为598 W[公式:见文][公式:见文]W。此外,该装置在不同工作频率、分离距离和湿度条件下均表现出稳定的输出,并能有效区分行走、跑步、跳跃和关节弯曲等运动,具有很强的自供电可穿戴运动监测和生物力学分析潜力。
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来源期刊
Nano-Structures & Nano-Objects
Nano-Structures & Nano-Objects Physics and Astronomy-Condensed Matter Physics
CiteScore
9.20
自引率
0.00%
发文量
60
审稿时长
22 days
期刊介绍: Nano-Structures & Nano-Objects is a new journal devoted to all aspects of the synthesis and the properties of this new flourishing domain. The journal is devoted to novel architectures at the nano-level with an emphasis on new synthesis and characterization methods. The journal is focused on the objects rather than on their applications. However, the research for new applications of original nano-structures & nano-objects in various fields such as nano-electronics, energy conversion, catalysis, drug delivery and nano-medicine is also welcome. The scope of Nano-Structures & Nano-Objects involves: -Metal and alloy nanoparticles with complex nanostructures such as shape control, core-shell and dumbells -Oxide nanoparticles and nanostructures, with complex oxide/metal, oxide/surface and oxide /organic interfaces -Inorganic semi-conducting nanoparticles (quantum dots) with an emphasis on new phases, structures, shapes and complexity -Nanostructures involving molecular inorganic species such as nanoparticles of coordination compounds, molecular magnets, spin transition nanoparticles etc. or organic nano-objects, in particular for molecular electronics -Nanostructured materials such as nano-MOFs and nano-zeolites -Hetero-junctions between molecules and nano-objects, between different nano-objects & nanostructures or between nano-objects & nanostructures and surfaces -Methods of characterization specific of the nano size or adapted for the nano size such as X-ray and neutron scattering, light scattering, NMR, Raman, Plasmonics, near field microscopies, various TEM and SEM techniques, magnetic studies, etc .
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