Content area

Abstract

The aim of this study is to examine the wettability and thermal properties of individual bamboo fibers after alkali treatment. The individual bamboo fibers were treated by sodium hydroxide (NaOH) solution with varying concentrations (6, 8, 10, 15 and 25%) followed by freeze-drying treatment. The surface analysis of alkali-treated individual bamboo fibers was characterized by atomic force microscope. Water droplet on the individual fiber surface was observed with drop shaper analyzer and the contact angles on fiber surface were also measured. Thermal properties were further studied by thermogravimetric analysis. The results indicated that alkali treatment resulted in the increase in surface roughness of individual bamboo fibers. Alkali treatment with low NaOH concentration could enhance the wettability of treated individual bamboo fibers, and while the wettability was reduced with alkali treatment at high concentration (25%). Thermal analysis revealed that the onset of decomposition and the maximum decomposition were moved to higher temperature after alkali treatment at low NaOH concentrations (6, 8, and 10%), suggesting the improvement in the thermal stability of treated individual bamboo fibers, while the thermal stability was compromised after alkali treatment at higher concentrations (15 and 25%).

Details

Title
Effect of alkali treatment on wettability and thermal stability of individual bamboo fibers
Author
Chen, Hong 1 ; Zhang, Wenfu 2 ; Wang, Xuehua 1 ; Wang, Hankun 3 ; Wu, Yan 1 ; Zhong, Tuhua 4 ; Benhua Fei 3 

 College of Furnishings and Industrial Design, Nanjing Forestry University, Nanjing, China 
 Zhejiang Forestry Academy, Hangzhou, China 
 International Center for Bamboo and Rattan, Beijing, China 
 Composite Materials and Engineering Center, Washington State University, Pullman, WA, USA 
Pages
398-405
Publication year
2018
Publication date
Aug 2018
Publisher
Springer Nature B.V.
ISSN
14350211
e-ISSN
16114663
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2259307208
Copyright
Journal of Wood Science is a copyright of Springer, (2018). All Rights Reserved.