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

Enzymatic modification of cellulose nanofibers to enhance thermal resistance and hydrophobicity

View through CrossRef
Abstract Cellulose nanofibers (CNFs), which is crystalline cellulosic fibers of 3-100 nm in width, are promising advanced materials. CNFs have attractive considerable attention due to their light weight, high strength, and large surface area. However, increasing thermal stability is a challenge in the application of CNFs. Generally, CNFs contain trace substances such as hemicellulose, which has a lower thermal degradation temperature than cellulose. Therefore, hemicellulose may decrease the thermal degradation temperature of CNFs. To increase the thermal stability of CNFs by removing hemicellulose, commercial CNFs were subjected to several cellulases and hemicellulases, and evaluated by thermogravimetric analysis. Our results showed that xylanase treatment for 1 h increased the pyrolysis temperature of the CNFs. Next, the basic sheet properties of enzyme-treated CNFs were investigated. The tensile strength of the CNF sheets decreased after enzymatic treatment, however, the contact angles of their sheets increased. These results indicate that the hydrophobicity of the surfaces of the CNFs was slightly increased by biomass-degrading enzymatic treatment.
Springer Science and Business Media LLC
Title: Enzymatic modification of cellulose nanofibers to enhance thermal resistance and hydrophobicity
Description:
Abstract Cellulose nanofibers (CNFs), which is crystalline cellulosic fibers of 3-100 nm in width, are promising advanced materials.
CNFs have attractive considerable attention due to their light weight, high strength, and large surface area.
However, increasing thermal stability is a challenge in the application of CNFs.
Generally, CNFs contain trace substances such as hemicellulose, which has a lower thermal degradation temperature than cellulose.
Therefore, hemicellulose may decrease the thermal degradation temperature of CNFs.
To increase the thermal stability of CNFs by removing hemicellulose, commercial CNFs were subjected to several cellulases and hemicellulases, and evaluated by thermogravimetric analysis.
Our results showed that xylanase treatment for 1 h increased the pyrolysis temperature of the CNFs.
Next, the basic sheet properties of enzyme-treated CNFs were investigated.
The tensile strength of the CNF sheets decreased after enzymatic treatment, however, the contact angles of their sheets increased.
These results indicate that the hydrophobicity of the surfaces of the CNFs was slightly increased by biomass-degrading enzymatic treatment.

Related Results

A Circular Economy Use of Durian Rind Waste for Cellulose Extraction and Its Application in Polylactic Acid (PLA) Biodegradable Composites
A Circular Economy Use of Durian Rind Waste for Cellulose Extraction and Its Application in Polylactic Acid (PLA) Biodegradable Composites
Durian rind is a food waste by-product left after consuming fruit flesh and can contribute to environmental pollution due to its slow decomposition and the large disposal area requ...
Thermal Effects in High Compactness CEA Stack
Thermal Effects in High Compactness CEA Stack
Thermal management is a pivotal aspect of stack durability and system operability. Consequently, understanding the thermal mapping within a stack based on its operating conditions ...
Enzymatic and chemical treatments to obtain pulps with high-cellulose content
Enzymatic and chemical treatments to obtain pulps with high-cellulose content
La celulosa es el polímero más abundante en la Tierra y en los últimos años ha ganado un amplio interés como fuente de nuevos productos con requisitos de procesamiento y de calidad...
Surface Modification of Polycaprolactone/Gelatin Nanofibers with β-Tricalcium Phosphate
Surface Modification of Polycaprolactone/Gelatin Nanofibers with β-Tricalcium Phosphate
Polycaprolactone (PCL) is one of synthetic biomaterials that have been used for bone scaffolds. PCL is a synthetic, linear, and semicrystalline aliphatic polymer that is widely use...
Enzymatic-assisted preparation of nanocrystalline cellulose from non-wood fibers
Enzymatic-assisted preparation of nanocrystalline cellulose from non-wood fibers
In the current scenario of growing environmental concerns, the search for innovative, renewable, non-polluting materials has never been as intensive as it is today. Cellulose, bein...
Effect of Acid/Fiber Ratio on Physical Properties of Cellulose Nanofibers Extracted from Cassava Pulp
Effect of Acid/Fiber Ratio on Physical Properties of Cellulose Nanofibers Extracted from Cassava Pulp
Cellulose nanofibers (CeNF) were extracted successfully from cassava pulp (CP) by submitting to alkali, bleaching and acid hydrolysis treatments. The raw CP was mercerized with NaO...
Smart Nanofibers in Wound Healing: Exploring Novel Combinations and Applications
Smart Nanofibers in Wound Healing: Exploring Novel Combinations and Applications
Abstract: Due to certain limitations of traditional therapies, millions of people all over the world suffering from chronic wounds are exploring new treatments....
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Abstract Introduction Hospitals are high-risk environments for infections. Despite the global recognition of these pathogens, few studies compare microorganisms from community-acqu...

Back to Top