Divya S, Ramasundaram Subramaniyan, Aruchamy Kanakaraj, Oh Tae Hwan, Levingstone Tanya, Dunne Nicholas
School of Chemical Engineering, Yeungnam University, Gyeongsan 712-749, Republic of Korea; Centre of Molecular Medicine and Diagnostics (COMManD), Department of Biochemistry, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences (SIMATS), Saveetha University, Chennai 600 077, India.
School of Chemical Engineering, Yeungnam University, Gyeongsan 712-749, Republic of Korea.
J Colloid Interface Sci. 2025 Feb;679(Pt A):324-334. doi: 10.1016/j.jcis.2024.09.217. Epub 2024 Sep 28.
Wearable piezoelectric nanogenerators (PENGs) are increasingly significant in healthcare and energy harvesting applications due to their ability to convert mechanical energy into electrical signals. In this study, we developed PENGs by incorporating crab shell powder (CS-NFs) into electrospun polyvinylidene fluoride (PVDF) nanofibers to enhance their piezoelectric properties. The PVDF-CS-NFs (PC-NFs) composites were evaluated for structural, thermal, and piezoelectric performance. The 1.5 wt% CS-NFs composite exhibited a notable improvement, with a maximum output voltage of 19 V under mechanical deformation, significantly higher than pristine PVDF NFs. Furthermore, the device demonstrated excellent sensitivity in real-time respiratory monitoring when applied to various body locations, including the chest, throat, and mask. Additionally, the PC-NFs-based PENGs were capable of charging a 2.2 µF capacitor to 2 V within 180 s and powering 56 LEDs. These results underscore the potential of using sustainable crab shell waste in biocompatible, eco-friendly piezoelectric devices for wearable sensors and energy harvesting applications.
可穿戴式压电纳米发电机(PENGs)因其能够将机械能转化为电信号,在医疗保健和能量收集应用中变得越来越重要。在本研究中,我们通过将蟹壳粉(CS-NFs)掺入电纺聚偏二氟乙烯(PVDF)纳米纤维中来开发PENGs,以增强其压电性能。对PVDF-CS-NFs(PC-NFs)复合材料的结构、热性能和压电性能进行了评估。1.5 wt%的CS-NFs复合材料表现出显著的改善,在机械变形下最大输出电压为19 V,明显高于原始PVDF纳米纤维。此外,该装置在应用于包括胸部、喉咙和口罩在内的身体各个部位时,在实时呼吸监测中表现出优异的灵敏度。此外,基于PC-NFs的PENGs能够在180秒内将一个2.2 µF的电容器充电至2 V,并为56个发光二极管供电。这些结果强调了在用于可穿戴传感器和能量收集应用的生物相容性、环保型压电装置中使用可持续蟹壳废料的潜力。