期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Pulse‑Charging Energy Storage for Triboelectric Nanogenerator Based on Frequency Modulation
1
作者 Kwon‑Hyung Lee Min‑Gyun Kim +10 位作者 Woosuk Kang Hyun‑Moon Park Youngmin Cho Jeongsoo Hong Tae‑Hee Kim Seung‑Hyeok Kim Seok‑Kyu Cho Donghyeon Kang Sang‑Woo Kim Changshin Jo Sang‑Young Lee 《Nano-Micro Letters》 2025年第9期139-151,共13页
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 harv... 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 highfrequency 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_(SC))and the output pulse duration of TENGs(Δt_(TENG)).Increasing the fSC·Δt_(TENG) 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. 展开更多
关键词 Energy harvesting storage hybrids Triboelectric nanogenerators SUPERCAPACITORS Frequency response MXene
在线阅读 下载PDF
An Anionic Covalent Organic Framework as an Electrostatic Molecular Rectifier for Stabilizing Mg Metal Electrodes
2
作者 Zhongping Li Hyunseok Moon +5 位作者 Seok-Kyu Cho Changqing Li Jeong-Min Seo Jong-Beom Baek Hong Xu Sang-Young Lee 《CCS Chemistry》 CSCD 2023年第11期2567-2575,共9页
Despite its potential as a high-capacity battery electrode,magnesium(Mg)metals are highly susceptible to electrolytes,resulting in the formation of unwanted passivation layers,which hinder charge transfer phenomena.He... Despite its potential as a high-capacity battery electrode,magnesium(Mg)metals are highly susceptible to electrolytes,resulting in the formation of unwanted passivation layers,which hinder charge transfer phenomena.Here,we first report an anionic covalent organic framework(a-COF)as an electrostatic molecular rectifier(that can preferentially trap solvent molecules)to stabilize Mg metal electrodes.Compared to a neutral COF(n-COF)as a control sample,the a-COF enhances Mg^(2+)transport by facilitating the desolvation of Mg^(2+)-solvent complexes and cationic mobility through its negatively charged one-dimensional columns,thereby achieving an ionic conductivity eight times higher than that of the n-COF.In addition,the anionic porous frameworks in contact with Mg metal electrodes enable a uniform Mg^(2+)flux and interfacial stability with Mg metal electrodes.Consequently,the a-COF exhibited reversible Mg plating/stripping cyclability on Mg metal electrodes compared to the n-COF,demonstrating the electrochemical viability of the anionic frameworks for Mg metal electrode stabilization. 展开更多
关键词 anionic covalent organic framework Mg metal electrodes ion transport interfacial stability Mg plating/stripping
在线阅读 下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部