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  4. Triboelectrification during non-wetting liquids intrusion–extrusion in hydrophobic nanoporous silicon monoliths
 
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Triboelectrification during non-wetting liquids intrusion–extrusion in hydrophobic nanoporous silicon monoliths

Citation Link: https://doi.org/10.15480/882.16000
Publikationstyp
Journal Article
Date Issued
2025-12-15
Sprache
English
Author(s)
Bartolomé, Luis  
Verziaggi, Nicola  
Brinker, Manuel  orcid-logo
Material- und Röntgenphysik M-2  
Amayuelas López Eder  
Merchiori, Sebastiano  
Arkan Mesude Zeliha  
Eglītis, Raivis  
Šutka, Andris  
Chorążewski, Mirosław  
Huber, Patrick  orcid-logo
Material- und Röntgenphysik M-2  
Meloni, Simone  
Grosu, Yaroslav  
TORE-DOI
10.15480/882.16000
TORE-URI
https://hdl.handle.net/11420/58007
Journal
Nano energy  
Volume
146
Article Number
111488
Citation
Nano Energy 146: 111488 (2025)
Publisher DOI
10.1016/j.nanoen.2025.111488
Scopus ID
2-s2.0-105017417978
Publisher
Elsevier
Triboelectric nanogenerators (TENGs) have emerged as promising devices for converting mechanical energy into electrical energy through contact electrification and electrostatic induction. However, the generated energy, unlike instantaneous power, current and voltage, is rarely addressed in the vibrant research field of TENGs. In this study, we investigate Intrusion–Extrusion Triboelectric Nanogenerators (IE-TENGs) based on nanoporous silicon monoliths and non-wetting liquids (i.e., water and a 1 mg/mL polyethylenimine solution), addressing the energy generated during this process, conversion efficiency as well as the mechanism underlying the observed phenomena. Compared to powder-based IE-TENGs, the use of monolithic silicon structures enables more efficient and reproducible energy harvesting, with significant improvements in both instantaneous power density and energy per cycle. We also analyzed the impact of compression rate and liquid properties on electrical output, showing that higher compression rates improve power generation, while modifying the liquid medium significantly improves conversion efficiency, reaching up to 9 %. Furthermore, through computational analysis, we identify the crucial role of grafting defects on the generated triboelectric output. This work introduces a novel approach to triboelectric energy harvesting by implementing a monolithic nanoporous architecture and offering an alternative pathway for enhancing contact electrification via confined solid–liquid interfaces. These findings provide new insights into the triboelectric behavior of porous systems and pave the way for next-generation high-performance IE-TENGs, with potential applications in wearable electronics, environmental energy harvesting, and self-powered sensing systems.
Subjects
Intrusion–extrusion
Nanoporous materials
Silicon monolith
Triboelectric nanogenerators
DDC Class
620.1: Engineering Mechanics and Materials Science
Funding(s)
Energy harvesting via wetting/drying cycles with nanoporous electrodes  
Lizenz
https://creativecommons.org/licenses/by/4.0/
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