A biowaste material-based low-cost environment-friendly triboelectric nanogenerator for self-powered sensing application

IF 5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Sayed Muksedul Haque Pias, Md. Nurnabi, Rahat Hossain, Md. Monjarul Alam, Kamaruzzaman and S M Sohel Rana
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Abstract

Global issues are addressed mainly by sustainable energy harvesting technology to maintain the social ecology. There is a lot of interest in creating flexible triboelectric nanogenerators (TENGs) using inexpensive, non-toxic natural materials, owing to a simple and cost-effective process. Utilizing a variety of waste materials, this technology is incredibly effective at transforming untidy environmental energies into green electricity for a range of ingenious applications. Herein, we have developed a novel water hyacinth root (WHR)-based green triboelectric nanogenerator (TENG) for self-powered sensing applications. For the construction of the TENG, WHR is affixed to fabrics to function as one triboelectric layer, while human skin serves as the opposing triboelectric layer. Water hyacinth roots are abundantly accessible and inexpensive, decreasing TENG production costs and providing an ecologically friendly and cost-free alternative to more expensive materials. Furthermore, the water hyacinth root is crucial for promoting environmentally friendly development, as it converts bio waste into a sustainable energy source, thereby creating an economy that prioritizes sustainability. WHRs exhibit fine fibers, sufficient tensile strength & flexibility, a rich composition of cellulose and lignin, rough texture, and abundant functional groups, which play a key role in demonstrating the electron-accepting ability of the WHRs. Based on the potential of this device, we have a power density of 5 W m−2 and a sensitivity of 3.2 V kPa−1. The electrical output was analyzed under various mechanical stimuli, proving its durability and reliability in energy harvesting. The current study anticipated employing natural waste to create healthcare monitoring, tactile sensing, and energy-harvesting devices, as well as potential uses in self-powered sensors for various security applications, Internet of Things (IoT), and human–machine interfaces. The WHR-TENG-based self-powered sensor exhibited an identification accuracy of 99.3% using a deep learning algorithm. Therefore, this work proves the need to develop waste-material-based TENGs for environmentally-friendly and economical self-powered devices.

Abstract Image

基于生物垃圾材料的低成本环境友好型自供电传感摩擦纳米发电机
全球问题主要通过可持续能源收集技术来解决,以维持社会生态。使用廉价、无毒的天然材料制造柔性摩擦电纳米发电机(TENGs)的兴趣很大,因为它的工艺简单且成本效益高。利用各种废料,这项技术在将杂乱的环境能源转化为绿色电力方面非常有效,可以用于一系列巧妙的应用。在此,我们开发了一种新的基于水葫芦根(WHR)的绿色摩擦电纳米发电机(TENG),用于自供电传感应用。在构建TENG的过程中,WHR贴在织物上作为一个摩擦电层,而人体皮肤作为相反的摩擦电层。水葫芦根可大量获取且价格低廉,降低了TENG的生产成本,并为更昂贵的材料提供了一种生态友好和无成本的替代品。此外,水葫芦根对促进环境友好型发展至关重要,因为它将生物废物转化为可持续能源,从而创造一个优先考虑可持续性的经济。whr具有优良的纤维,足够的抗拉强度;柔韧性,纤维素和木质素的丰富组成,粗糙的质地和丰富的官能团,这些在证明whr的电子接受能力方面起着关键作用。根据该器件的电位,我们的功率密度为5w m−2,灵敏度为3.2 V kPa−1。分析了各种机械刺激下的电输出,证明了其在能量收集中的耐久性和可靠性。目前的研究预计,利用自然废物来制造医疗监控、触觉传感和能量收集设备,以及各种安全应用、物联网(IoT)和人机界面的自供电传感器的潜在用途。使用深度学习算法,基于whr - teng的自供电传感器的识别准确率达到99.3%。因此,这项工作证明了开发基于废物材料的teng用于环保和经济的自供电设备的必要性。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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