A Novel Highly Conductive, Transparent, and Strong Pure-Cellulose Film from TEMPO-Oxidized Bacterial Cellulose by Increasing Sonication Power

Rahmadiawan, Dieter and Abral, Hairul and Kotodeli, Rafi Alzues and Sugiarti, Eni and Muslimin, Ahmad Novi and Admi, Ratna Isnanita and Arafat, Andril and Kim, Hyun-Joong and Sapuan, S.M. and Kosasih, Engkos Achmad (2023) A Novel Highly Conductive, Transparent, and Strong Pure-Cellulose Film from TEMPO-Oxidized Bacterial Cellulose by Increasing Sonication Power. Polymers, 15 (3). p. 643. ISSN 2073-4360

Full text not available from this repository. (Request a copy)

Abstract

Developing a conductive cellulose film without any metal compounds remains chal lenging, though in great demand. However, cellulose film prepared from bacterial cellulose (BC) powder without any metal compounds has poor tensile, physical, and electrical properties, thus limiting its application. Herein, this study aims to prepare and characterize an all-cellulose film from 2,2,6,6-Tetramethylpiperidin-1-yl)oxyl (TEMPO)-oxidized bacterial cellulose (TOBC) powders without adding metal compounds and treated by ultrasonication. TOBC powders are sonicated with
various powers of 250, 500, and 750 W for 20 min without any other substance. It was proved that increasing the ultrasonication power level resulted in a significant improvement in the properties of the film. The ultrasonication of 750 W increased tensile strength by 85%, toughness by 308%, light transmittance by 542%, and electrical conductivity by 174% compared to the nonsonicated film. A light-emitting diode connected to a power source through this sonicated film was much brighter than that connected via a nonsonicated film. For the first time, this study reports the preparation of electrically conductive, transparent, strong, and bendable pure TOBC films by increasing ultrasonic power for environmentally friendly electronic devices application.

Item Type: Article
Uncontrolled Keywords: bacterial cellulose; electrical conductivity; thermal resistance; ultrasonication treatment
Subjects: Materials Sciences
Depositing User: Mrs Titi Herawati
Date Deposited: 05 Dec 2025 02:16
Last Modified: 05 Dec 2025 02:16
URI: https://karya.brin.go.id/id/eprint/55706

Actions (login required)

View Item
View Item