Literature DB >> 28818654

Water-based fractionation of a commercial humic acid. Solid-state and colloidal characterization of the solubility fractions.

Weronika M Swiech1, Ian Hamerton2, Huang Zeng3, David J Watson2, Eleonore Mason4, Spencer E Taylor5.   

Abstract

BACKGROUND AND HYPOTHESIS: Humic acid (HA) is of considerable environmental significance, being a major component of soil, as well as being considered for application in other technological areas. However, its structure and colloidal properties continue to be the subject of debate, largely owing to its molecular complexity and association with other humic substances and mineral matter. As a class, HA is considered to comprise supramolecular assemblies of heterogeneous species, and herein we consider a simple route for the separation of some HA sub-fractions. EXPERIMENTS: A commercial HA sample from Sigma-Aldrich has been fractionated into two soluble (S1, S2) and two insoluble (I1, I2) fractions by successive dissolution in deionized water at near-neutral pH. These sub-fractions have been characterized by solution and solid-state approaches.
FINDINGS: Using this simple approach, the HA has been shown to contain non-covalently bonded species with different polarity and water solubility. The soluble and insoluble fractions have very different chemical structures, as revealed particularly by their solid-state properties (13C NMR and IR spectroscopy, and TGA); in particular, S1 and S2 are characterized by higher carbonyl and aromatic contents, compared with I1 and I2. As shown by solution SAXS measurements and AFM, the soluble fractions behave as hydrophilic colloidal aggregates of at least 50nm diameter.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  AFM; Colloidal properties; Humic acid fractionation; IR spectroscopy; SAXS; Solid-state NMR; Surface tension; TGA; Zeta potential

Year:  2017        PMID: 28818654     DOI: 10.1016/j.jcis.2017.08.031

Source DB:  PubMed          Journal:  J Colloid Interface Sci        ISSN: 0021-9797            Impact factor:   8.128


  1 in total

1.  Sustainable Treatment and Resource Recovery of Anion Exchange Spent Brine by Pilot-Scale Electrodialysis and Ultrafiltration.

Authors:  Hongfang Sun; Daoxu Zhu; Peng Shi; Wenxiang Ji; Xun Cao; Shi Cheng; Yufeng Lou; Aimin Li
Journal:  Membranes (Basel)       Date:  2022-02-27
  1 in total

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