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Energy Harvesting Floor from Commercial Cellulosic Materials for a Self-Powered Wireless Transmission Sensor System

机译:从商用纤维素材料进行电力纤维素材料的能量收集地板

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Cellulose-based materials have gained increasing attention for the development of low-cost, eco-friendly technologies, and more recently, as functional materials in triboelectric nanogenerators (TENGs). However, the low output performance of cellulose-based TENGs severely restricts their versatility and employment in emerging smart building and smart city applications. Here, we report a high output performance of a commercial cellulosic material-based energy harvesting floor (CEHF). Benefiting from the significant difference in the triboelectric properties between weighing and nitrocellulose papers, high surface roughness achieved by a newly developed mechanical exfoliation method, and large overall contact area via a multilayered device structure, the CEHF (25 cm × 15 cm × 1.2 cm) exhibits excellent output performance with a maximum output voltage, current, and power peak values of 360 V, 250 μA, and 5 mW, respectively. It can be directly installed or integrated with regular flooring products to effectively convert human body movements into electricity and shows good durability and stability. Moreover, a wireless transmission sensing system that can produce a 1:1 footstep-to-signal (transmitted and received) ratio is instantaneously powered by a TENG based entirely on cellulosic materials for the first time. This work provides a feasible and effective way to utilize commercial cellulosic materials to construct self-powered wireless transmission systems for real-time sensing applications.
机译:纤维素基材料因开发低成本、环保的技术而受到越来越多的关注,最近作为摩擦电纳米发电机(TENG)的功能材料也受到了越来越多的关注。然而,纤维素基TENG的低输出性能严重限制了其在新兴智能建筑和智能城市应用中的多功能性和应用。在这里,我们报告了一种基于商业纤维素材料的能量收集地板(CEHF)的高输出性能。CEHF(25厘米×15厘米×1.2厘米)具有优异的输出性能,最大输出电压、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大电流、最大,功率峰值分别为360 V、250μA和5 mW。它可以直接安装或与常规地板产品集成,有效地将人体运动转化为电能,并显示出良好的耐用性和稳定性。此外,能够产生1:1(传输和接收)信号比的无线传输传感系统首次由完全基于纤维素材料的TEN瞬时供电。这项工作为利用商业纤维素材料构建用于实时传感应用的自供电无线传输系统提供了一种可行且有效的方法。

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