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基于频率调制的摩擦纳米发电机脉冲充电储能

Pulse-Charging Energy Storage for Triboelectric Nanogenerator Based on Frequency Modulation.

作者信息

Lee Kwon-Hyung, Kim Min-Gyun, Kang Woosuk, Park Hyun-Moon, Cho Youngmin, Hong Jeongsoo, Kim Tae-Hee, Kim Seung-Hyeok, Cho Seok-Kyu, Kang Donghyeon, Kim Sang-Woo, Jo Changshin, Lee Sang-Young

机构信息

Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul, 03722, Republic of Korea.

Ulsan Advanced Energy Technology R&D Center, Korea Institute of Energy Research (KIER), Ulsan, 44776, Republic of Korea.

出版信息

Nanomicro Lett. 2025 Apr 10;17(1):210. doi: 10.1007/s40820-025-01714-3.

Abstract

Energy harvesting storage hybrid devices have garnered considerable attention as self-rechargeable power sources for wireless and ubiquitous electronics. Triboelectric nanogenerators (TENGs), a common type of energy harvester, generate alternating current-based, irregular short pulses, posing a challenge for storing the generated electrical energy in energy storage systems that typically operate with direct current (DC)-based low-frequency response. In this study, we propose a new strategy that leverages high-frequency response to develop efficient chargeable TENG-supercapacitor (SC) hybrid devices. A high-frequency SC was fabricated using hollow-structured MXene electrode materials, resulting in a twofold increase in the charging efficiency of the hybrid device compared to a control SC made with conventional carbon electrode materials. For a systematic understanding, the electrochemical interplay between the TENGs and SCs was investigated as a function of the frequency characteristics of SCs (f) and the output pulse duration of TENGs (Δt). Increasing the f·Δt enhanced the charging efficiency of the TENG-SC hybrid devices. This study highlights the importance of frequency response design in developing efficient chargeable TENG-SC hybrid devices.

摘要

能量收集存储混合设备作为无线和普及型电子产品的自充电电源已引起了广泛关注。摩擦纳米发电机(TENGs)是一种常见的能量收集器,会产生基于交流电的不规则短脉冲,这给将产生的电能存储在通常基于直流电(DC)低频响应运行的能量存储系统中带来了挑战。在本研究中,我们提出了一种利用高频响应来开发高效可充电TENG-超级电容器(SC)混合设备的新策略。使用空心结构的MXene电极材料制造了高频SC,与使用传统碳电极材料制成的对照SC相比,混合设备的充电效率提高了两倍。为了进行系统的理解,研究了TENGs和SCs之间的电化学相互作用与SCs的频率特性(f)和TENGs的输出脉冲持续时间(Δt)的关系。增加f·Δt可提高TENG-SC混合设备的充电效率。这项研究突出了频率响应设计在开发高效可充电TENG-SC混合设备中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dbfd/11985731/95e5ace5ff3d/40820_2025_1714_Fig1_HTML.jpg

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