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High Performance Flexible Tribo/Piezoelectric Nanogenerators based on BaTiO3/Chitosan Composites

材料科学 摩擦电效应 纳米发生器 压电 复合材料 能量收集 纳米复合材料 壳聚糖 生物高聚物 电介质 复合数 纳米颗粒 纳米技术 电容器 聚合物 电压 光电子学 化学工程 电气工程 功率(物理) 工程类 物理 量子力学
作者
Satana Pongampai,Thitirat Charoonsuk,Nattapong Pinpru,Rangson Muanghlua,Naratip Vittayakorn,Naratip Vittayakorn
出处
期刊:Integrated Ferroelectrics [Taylor & Francis]
卷期号:223 (1): 137-151 被引量:16
标识
DOI:10.1080/10584587.2021.1964293
摘要

Natural biopolymer materials have been of interest in wearable energy harvester technology, especially in biocompatible triboelectric nanogenerators (BTENGs), due to their biodegradable, biocompatible, nontoxic and excellent antibacterial properties. Nevertheless, obstacles concerning economical and biocompatible utilization of triboelectric nanogenerators (TENGs) continue to prevail. The natural biopolymer, chitosan (CS), is composed of a long biopolymer chain of N-acetyl glucosamine. It enables exciting opportunities for low-cost, biodegradable triboelectric nanogenerator (TENG) applications. However, the electrical output performance of CS based on TENGs is low when compared with devices constructed from synthetic polymers. Hence, to enhance electrical output performance, BaTiO3 nano-powders (BT-NPs) were embedded into the CS as dielectric material, in order to improve electrical properties by increasing the dielectric constant of the composite film. A flexible hybrid piezo/triboelectric nanogenerator, designed by BT-NPs embedded into CS (BT-NPs/CS) composite film, was constructed successfully. The effects of the BaTiO3 nano-powder (BT-NP) content on the output performance were explored systematically. The device with 5 wt% BT-NPs in CS, and a 160-μm-thick film, exhibited maximum open-circuit voltage (VOC) and transferred short-circuit current (ISC) of 110.8 V and 10 µA, respectively, as well as maximum power output of 431.8 µW. Practical and application demonstrations also were investigated, namely charged capacitors for storing energy, testing voltage stability and driving commercial LEDs. This work exhibited high electrical performance enhancement of BT-NPs/CS nanocomposite film, which demonstrated better material modification.
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