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用于增强性能的能量收集器与超级电容器的协同集成。

Synergistic integration of energy harvesters and supercapacitors for enhanced performance.

作者信息

Aleksandrova Mariya, Pandiev Ivaylo

机构信息

Technical University of Sofia, Dept. of Microelectronics, 8 Kliment Ohridski Blvd, 1756, Sofia, Bulgaria.

Technical University of Sofia, Dept. of Electronics, 8 Kliment Ohridski Blvd, 1756, Sofia, Bulgaria.

出版信息

Heliyon. 2025 Feb 20;11(4):e42808. doi: 10.1016/j.heliyon.2025.e42808. eCollection 2025 Feb 28.

Abstract

In this paper, it is integrated a piezoelectric energy harvester and a supercapacitor storage device on a flexible substrate with a connection through an innovative alternative current (AC) to direct current (DC) boosting power management system for wearable biosensors' power supply. Flexible substrates can conform to irregular surfaces or shapes, enabling energy harvesting and storage devices to be integrated into a variety of form factors, including curved or bendable surfaces. Having an integrated energy harvester and storage system ensures a reliable and portable power source, providing power autonomy. The proposed element was layer-by-layer design including silver electrode, polyvinylidene fluoride-trifluoroethylene/multiwall carbon nanotubes, poly(3,4-ethylenedioxythiophene) polystyrene sulfonate: carbon nanotubes, aluminium oxide, graphene and poly(3,4-ethylenedioxythiophene) polystyrene sulfonate: carbon nanotubes (Ag/PVDF-TrFE:MWCNT/PEDOT:PSS:CNT/AlO/Gr/PEDOT:PSS:CNT), prepared by spray coating. A voltage rectifier with a low-pass filter and a direct current to direct current (DC-DC) converter was used as a power management system and intermediate unit between the harvester and storage part of the element. The type of the electronic circuit is voltage-doubler rectifier. It was found that piezoelectric harvester can generates voltage with a magnitude of 2V at loading of 110 g/cm@10 Hz and with the proposed electronic circuit can be determined the workability of the created element during repeated charging and discharging, without introducing interfering changes in the capacity. The behaviour of the supercapacitor part is dependent on the thickness of AlO and demonstrates more favourable characteristics at the thicker film of 750 nm, where the charging time is short (6s), the voltage ripples are small (±0.50 mV), and the maximum output voltage after charging almost reached the input supply voltage (∼1.94 V output voltage at 2 V input voltage). In addition, it resists up to 15500 cycles and shows a stable retention capacitance of 1.63 mF. The devices retain their capacity at multiple bending (1000) to 93 % and 91 %, according to the aluminium oxide film thickness, which is suitable for wearable devices.

摘要

在本文中,将一个压电能量收集器和一个超级电容器存储装置集成在一个柔性基板上,并通过一个创新的交流(AC)到直流(DC)升压电源管理系统进行连接,以为可穿戴生物传感器供电。柔性基板可以贴合不规则的表面或形状,使能量收集和存储装置能够集成到各种外形中,包括弯曲或可弯曲的表面。拥有一个集成的能量收集器和存储系统可确保可靠且便携的电源,提供电力自主性。所提出的元件采用逐层设计,包括银电极、聚偏二氟乙烯 - 三氟乙烯/多壁碳纳米管、聚(3,4 - 亚乙基二氧噻吩)聚苯乙烯磺酸盐:碳纳米管、氧化铝、石墨烯和聚(3,4 - 亚乙基二氧噻吩)聚苯乙烯磺酸盐:碳纳米管(Ag/PVDF - TrFE:MWCNT/PEDOT:PSS:CNT/AlO/Gr/PEDOT:PSS:CNT),通过喷涂制备。一个带有低通滤波器的电压整流器和一个直流到直流(DC - DC)转换器被用作电源管理系统以及该元件的收集器和存储部分之间的中间单元。电子电路的类型是倍压整流器。研究发现,压电收集器在110 g/cm@10 Hz的负载下可产生2V的电压,并且通过所提出的电子电路,可以确定所创建元件在重复充电和放电过程中的可操作性,而不会在容量上引入干扰性变化。超级电容器部分的性能取决于氧化铝的厚度,在750 nm的较厚薄膜处表现出更有利的特性,此时充电时间短(6秒),电压纹波小(±0.50 mV),充电后的最大输出电压几乎达到输入电源电压(输入电压为2V时输出电压约为1.94V)。此外,它可承受高达15500次循环,并显示出1.63 mF的稳定保持电容。根据氧化铝薄膜的厚度,这些器件在多次弯曲(1000次)后仍能保持其容量的93%和91%,这适用于可穿戴设备。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/814e/11904531/686240c7f39a/gr1.jpg

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