基于层状CNT/MXene/纤维素纳米纤维气凝胶的高性能双峰温度/压力触觉传感器

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Lin Tian, Fu-Lin Gao, Yu-Xiao Li, Zhi-Yue Yang, Xinghe Xu, Zhong-Zhen Yu, Jie Shang, Run-Wei Li, Xiaofeng Li
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引用次数: 0

摘要

热电压阻双模传感器的快速发展,为增强柔性触觉传感器的功能性、小型化和集成化开辟了新的途径。然而,现有的研究主要集中在解耦温度和压力响应上,这在优化传感器性能和探索多功能应用方面留下了很大的空白。为了解决这一限制,开发了一种具有层状多孔结构的复合气凝胶,将碳纳米管和MXene作为导电材料,并用纤维素纳米纤维增强。这种创新设计的特点是超低导热性以及卓越的电性能和热电性能,使传感器能够监测温度和压力刺激,而不会受到热电和压阻机制的干扰。演示结果显示了卓越的传感能力,包括0.03 K的最小可检测温度变化和0.3 Pa的压力检测极限。该传感器具有33.5µV K−1和- 45.2% kPa−1的高灵敏度,以及在温度和压力刺激下的稳定性。此外,独特的多模态传感机制支持热电能量收集、材料识别、复杂信息传输、智能可穿戴设备、电子皮肤、人机交互界面等多种应用。本研究为高性能双峰触觉传感器的设计提供了可靠的解决方案,并显著推进了其在多个领域的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-Performance Bimodal Temperature/Pressure Tactile Sensor Based on Lamellar CNT/MXene/Cellulose Nanofibers Aerogel with Enhanced Multifunctionality

High-Performance Bimodal Temperature/Pressure Tactile Sensor Based on Lamellar CNT/MXene/Cellulose Nanofibers Aerogel with Enhanced Multifunctionality
The rapid development of thermoelectric-piezoresistive dual-mode sensors has opened new avenues for enhancing the functionality, miniaturization, and integration of flexible tactile sensors. However, existing research primarily focuses on decoupling temperature and pressure responses, which leaves a significant gap in optimizing sensor performance and exploring multifunctional applications. To address this limitation, a composite aerogel with a layered porous structure is developed, integrating carbon nanotubes and MXene as conductive materials and reinforced with cellulose nanofibers. The innovative design, characterized by ultra-low thermal conductivity along with superior electrical and thermoelectric properties, allows the resulting sensor to monitor temperature and pressure stimuli without interference through thermoelectric and piezoresistive mechanisms. Demonstrated results reveal exceptional sensing capabilities, including a minimum detectable temperature variation of 0.03 K and a pressure detection limit of 0.3 Pa. The sensor exhibits high sensitivities of 33.5 µV K−1 and −45.2% kPa−1, along with stability across both temperature and pressure stimuli. Furthermore, the unique multi-modal sensing mechanism supports various applications, such as thermoelectric energy harvesting, material recognition, complex information transmission, smart wearable devices, electronic skin, and human-computer interaction interfaces. This research presents a robust solution for designing high-performance dual-modal tactile sensors and significantly advances their practical applications across multiple domains.
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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