Versatile Ultrahigh‐Output Bilayer Hydrogel for Electricity Generation and Passive Cooling

The gradient concentration in nature has garnered significant attention as a promising source for energy harvesting. Researchers have explored various methods to harness electricity from gradient‐concentration‐induced flows, including evaporation‐driven nanogenerators and humidity‐gradient‐based pow...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Advanced functional materials 2024-09, Vol.34 (52), p.n/a
Hauptverfasser: Chen, Guopeng, Xie, Shangzhen, Xiang, Kang, Wu, Huangying, Lv, Song, Jiang, Xingchi, Guo, Zhiguang
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:The gradient concentration in nature has garnered significant attention as a promising source for energy harvesting. Researchers have explored various methods to harness electricity from gradient‐concentration‐induced flows, including evaporation‐driven nanogenerators and humidity‐gradient‐based power generators. However, their low current and power density are the main obstacles toward practical applications. Herein, a Bilayer Hydrogel Electricity Generator (BHEG) is presented to enable efficient energy harvesting through the synergy between ion gradient concentration and galvanic effects. A BHEG unit employing identical materials for both electrodes demonstrates an open‐circuit voltage of 0.7 V and a short‐circuit current of 4.34 mA—surpassing the currently reported average by over 73 times—and achieves a maximum power density of 72.2 mW m−2. Moreover, another BHEG unit using Zn─C electrode materials exhibit an open‐circuit voltage of 1.86 V and a short‐circuit current of 92 mA. Furthermore, the versatility of the BHEG extends beyond power generation, effectively providing passive thermal management for electronics, resulting in a maximum temperature reduction of ≈20 °C. Consequently, the study contributes insights into the design and fabrication of efficient hydrogel‐based power generators, providing a promising avenue for leveraging natural‐flow‐induced energy for various applications. A novel multifunctional bilayer hydrogel has been developed, which utilizes the ion concentration difference and ionization effect between the bilayer hydrogels to successfully achieve stable electrical energy output. At the same time, this hydrogel can also fully use the abundant water molecules within it for effective passive cooling. As a result, this device possesses multiple functions and exhibits excellent application performance in relatively particular environments.
ISSN:1616-301X
1616-3028
DOI:10.1002/adfm.202411298