Modification of xylan via an oxidation-reduction reaction

Chonnipa Palasingh, Koyuru Nakayama, Felix Abik, Kirsi S. Mikkonen, Lars Evenäs, Anna Ström, Tiina Nypelö*

*Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

20 Citations (Scopus)

Abstract

Xylan is a biopolymer readily available from forest resources. Various modification methods, including oxidation with sodium periodate, have been shown to facilitate the engineering applications of xylan. However, modification procedures are often optimized for semicrystalline high molecular weight polysaccharide cellulose rather than for lower molecular weight and amorphous polysaccharide xylan. This paper elucidates the procedure for the periodate oxidation of xylan into dialdehyde xylan and its further reduction into a dialcohol form and is focused on the modification work up. The oxidation-reduction reaction decreased the molecular weight of xylan while increased the dispersity more than 50%. Unlike the unmodified xylan, all the modified grades could be solubilized in water, which we see essential for facilitating the future engineering applications of xylan. The selection of quenching and purification procedures and pH-adjustment of the reduction step had no significant effect on the degree of oxidation, molecular weight and only a minor effect on the hydrodynamic radius in water. Hence, it is possible to choose the simplest oxidation-reduction route without time consuming purification steps within the sequence.

Original languageEnglish
Article number119660
Number of pages7
JournalCarbohydrate Polymers
Volume292
DOIs
Publication statusPublished - 15 Sept 2022
MoE publication typeA1 Journal article-refereed

Keywords

  • Keywords:
  • Polysaccharides
  • Dialcohol xylan
  • Molecular weight
  • Hydrodynamic radius
  • Solubilization
  • PERIODATE-OXIDATION
  • CELLULOSE
  • FILMS
  • HYDROGELS

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