Preparation of Chitin Nanofibers and Natural Rubber Composites and Their Triboelectric Nanogenerator Applications

dc.contributor.authorKattaliya Petchnui
dc.contributor.authorTeerayut Uwanno
dc.contributor.authorMayuree Phonyiem Reilly
dc.contributor.authorChinathun Pinming
dc.contributor.authorAlongkot Treetong
dc.contributor.authorVisittapong Yordsri
dc.contributor.authorNutthanun Moolsradoo
dc.contributor.authorAnnop Klamcheun
dc.contributor.authorWinadda Wongwiriyapan
dc.date.accessioned2025-07-21T06:10:52Z
dc.date.issued2024-02-03
dc.description.abstractTriboelectric nanogenerators (TENGs) have gained significant attention as promising energy-harvesting devices that convert mechanical energy into electrical energy through charge separation induced by friction and electrostatic induction. In this study, we explore the utilization of biowaste shrimp shell-extracted chitin nanofiber (ChNF) as a viable eco-friendly material for TENG applications. Composite materials were prepared by incorporating ChNF into natural rubber (NRL) at loading levels of 0.1 and 0.2 wt% (NRL/ChNF) to form the TENG triboelectric layer. ChNFs with a uniform width of approximately 10-20 nm were successfully extracted from the shrimp shells through a simple mechanical procedure. The NRL/ChNF composites exhibited enhanced mechanical properties, as evidenced by a higher Young's modulus (3.4 GPa) compared to pure NRL. Additionally, the NRL/ChNF composites demonstrated an increased dielectric constant of 3.3 at 0.1 MHz. Moreover, the surface potential difference of NRL increased from 0.182 V to 1.987 V in the NRL/ChNF composite. When employed as the triboelectric layer in TENG, the NRL/ChNF composites exhibited significant improvement in their output voltage, with it reaching 106.04 ± 2.3 V. This enhancement can be attributed to the increased dielectric constant of NRL/ChNF, leading to enhanced charge exchange and charge density. This study presents a straightforward and environmentally friendly technique for preparing sustainable natural materials suitable for energy-harvesting devices.
dc.identifier.doi10.3390/ma17030738
dc.identifier.urihttps://dspace.kmitl.ac.th/handle/123456789/13307
dc.subjectNanogenerator
dc.subject.classificationAdvanced Sensor and Energy Harvesting Materials
dc.titlePreparation of Chitin Nanofibers and Natural Rubber Composites and Their Triboelectric Nanogenerator Applications
dc.typeArticle

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