Sains Malaysiana 48(7)(2019):
1459–1472
http://dx.doi.org/10.17576/jsm-2019-4807-15
Electrospun Cellulose
Fibres and Applications
(Serabut dan Aplikasi
Selulosa Elektropusing)
WAN FARAHHANIM WAN FATHILAH1 & RIZAFIZAH OTHAMAN1,2*
1Faculty
of Science and Technology, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Selangor Darul Ehsan, Malaysia
2Polymer
Research Center, Faculty of Science and Technology, Universiti Kebangsaan
Malaysia, 43600 UKM Bangi, Selangor
Darul Ehsan, Malaysia
Received: 4 February
2019/Accepted: 24 April 2019
ABSTRACT
Cellulose fibres and
nanofibres have gained interest because of the high strength and firmness,
biodegradability and renewability. The enthusiasm in cellulose and its
modification as cellulose-derivative has been exponentially expanding. This
paper discuss on cellulose and its derivatives, and methods to produce
cellulose fibres and nanofibres. Emphasis is given on electrospinning
technique, the most utilised technique to produce cellulose fibres and
cellulose nanofibres with ranging from nanometer to millimeter in diameter. It
also summarises cellulose in terms of a matrix of cellulose, solvent, parameter
electrospinning, fibre diameter and their perspective applications.
Keywords: Cellulose;
cellulose nanofibre; electrospinning; electrospun
ABSTRAK
Serabut selulosa dan serabut
nano mendapat perhatian kerana kekuatan yang tinggi dan keteguhan,
keterbiodegradan dan keterbaharuan. Keghairahan dalam selulosa dan
pengubahsuaiannya sebagai selulosa-terbitan telah berkembang pesat.
Kertas ini membincangkan tentang selulosa dan terbitannya serta
kaedah untuk menghasilkan serabut selulosa dan serabut nano. Penekanan
diberikan pada teknik elektropemusingan, teknik yang paling kerap
digunakan untuk menghasilkan serabut selulosa dan selulosa serabut
nano dengan diameter antara nanometer hingga milimeter. Ia juga
merumuskan selulosa daripada segi matriks selulosa, pelarut, parameter
elektropemusingan, diameter serabut dan perspektif aplikasinya.
Kata kunci: Elektropemusingan; elektropusing; selulosa; selulosa
serabut nano
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*Corresponding author; email:
rizafizah@ukm.edu.my
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