Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

All-Cellulose Nanofiber-Based Sustainable Triboelectric Nanogenerators for Enhanced Energy Harvesting

View through CrossRef
Triboelectric nanogenerators (TENGs) show promising potential in energy harvesting and sensing for various electronic devices in multiple fields. However, the majority of materials currently utilized in TENGs are unrenewable, undegradable, and necessitate complex preparation processes, resulting in restricted performance and durability for practical applications. Here, we propose a strategy that combines straightforward chemical modification and electrospinning techniques to construct all-cellulose nanofiber-based TENGs with substantial power output. By using cellulose acetate (CA) as the raw material, the prepared cellulose membranes (CMs) and fluorinated cellulose membranes (FCMs) with different functional groups and hydrophobic properties are applied as the tribopositive and tribonegative friction layers of FCM/CM-based triboelectric nanogenerators (FC-TENGs), respectively. This approach modulates the microstructure and triboelectric polarity of the friction materials in FC-TENGs, thus enhancing their triboelectric charge densities and contact areas. As a result, the assembled FC-TENGs demonstrate enhanced output performance (94 V, 8.5 µA, and 0.15 W/m2) and exceptional durability in 15,000 cycles. The prepared FC-TENGs with efficient energy harvesting capabilities can be implemented in practical applications to power various electronic devices. Our work strengthens the viability of cellulose-based TENGs for sustainable development and provides novel perspectives on the cost-effective and valuable utilization of cellulose in the future.
Title: All-Cellulose Nanofiber-Based Sustainable Triboelectric Nanogenerators for Enhanced Energy Harvesting
Description:
Triboelectric nanogenerators (TENGs) show promising potential in energy harvesting and sensing for various electronic devices in multiple fields.
However, the majority of materials currently utilized in TENGs are unrenewable, undegradable, and necessitate complex preparation processes, resulting in restricted performance and durability for practical applications.
Here, we propose a strategy that combines straightforward chemical modification and electrospinning techniques to construct all-cellulose nanofiber-based TENGs with substantial power output.
By using cellulose acetate (CA) as the raw material, the prepared cellulose membranes (CMs) and fluorinated cellulose membranes (FCMs) with different functional groups and hydrophobic properties are applied as the tribopositive and tribonegative friction layers of FCM/CM-based triboelectric nanogenerators (FC-TENGs), respectively.
This approach modulates the microstructure and triboelectric polarity of the friction materials in FC-TENGs, thus enhancing their triboelectric charge densities and contact areas.
As a result, the assembled FC-TENGs demonstrate enhanced output performance (94 V, 8.
5 µA, and 0.
15 W/m2) and exceptional durability in 15,000 cycles.
The prepared FC-TENGs with efficient energy harvesting capabilities can be implemented in practical applications to power various electronic devices.
Our work strengthens the viability of cellulose-based TENGs for sustainable development and provides novel perspectives on the cost-effective and valuable utilization of cellulose in the future.

Related Results

All-cellulose nanocomposites film from sisal fiber
All-cellulose nanocomposites film from sisal fiber
In this work, self-reinforced cellulose nanocomposite films were produced using cellulose and nanofiber from sisal fiber as matrix and reinforcement, respectively. Cellulose nanofi...
FABRICATION OF PCL-COLLAGEN NANOFIBER USING CHLOROFORM-FORMIC ACID SOLUTION AND ITS APPLICATION AS WOUND DRESSING CANDIDATE
FABRICATION OF PCL-COLLAGEN NANOFIBER USING CHLOROFORM-FORMIC ACID SOLUTION AND ITS APPLICATION AS WOUND DRESSING CANDIDATE
In this study, polycaprolactone-collagen nanofiber was prepared with 10% w/v composition using a mixture of chloroform-formic acid. PCL was dissolved in chloroform while collagen w...
Nanogenerators: An emerging technology towards nanoenergy
Nanogenerators: An emerging technology towards nanoenergy
Nanoenergy is a field of studying the small-scale, highly efficient energy harvesting, storage, and applications by using nanomaterials and nanodevices. Nanogenerators are develope...
PENGARUH VARIASI PENAMBAHAN MASSA PANI TERHADAP KONDUKTIVITAS NANOFIBER PVA/PANI
PENGARUH VARIASI PENAMBAHAN MASSA PANI TERHADAP KONDUKTIVITAS NANOFIBER PVA/PANI
Abstrak Polianilin adalah salah satu polimer konduktif yang memiliki konduktivitas relatif tinggi dan banyak dikembangkan karena tahapan sintesisnya yang mudah. PANI dapat dibentu...
Cellulose-Synthesizing Machinery in Bacteria
Cellulose-Synthesizing Machinery in Bacteria
Abstract Cellulose is produced by all plants and a number of other organisms, including bacteria. The most representative cellulose-producing bacterial species is Gluconace...
Recent Progress in Cellulose-Based Aerogels for Sustainable Oil–Water Separation Technologies
Recent Progress in Cellulose-Based Aerogels for Sustainable Oil–Water Separation Technologies
Polymer-based aerogels have recently received considerable research attention as a favorable option for oil–water separation due to their enhanced porous 3D structure with great sp...

Back to Top