Cellulose Nanofiber and Magnetic Nanoparticles as Building Blocks Constructing Biomass-Based Porous Structured Particles and Their Protein Adsorption Performance

Rahmatika, Annie M. and Toyoda, Youhei and Nguyen, Tue T. and Goi, Yohsuke and Kitamura, Takeo and Morita, Yuko and Kume, Kazunori and Ogi, Takashi (2020) Cellulose Nanofiber and Magnetic Nanoparticles as Building Blocks Constructing Biomass-Based Porous Structured Particles and Their Protein Adsorption Performance. ACS Sustainable Chemistry and Engineering, 8 (50). 18686 – 18695. ISSN 21680485

[thumbnail of Rahmatika 2020.pdf] Text
Rahmatika 2020.pdf - Published Version
Restricted to Registered users only

Download (10MB) | Request a copy

Abstract

Nanostructured fine particles have attracted attention as next generation materials because of their unique features and ease of handling compared with those of nanoparticles. However, most previously reported studies are limited to using nanoparticles or precursor solutions (e.g., atoms or molecules) as building blocks. In this study, we successfully developed a new type of porous structured fine particles via self-assembly of TEMPO-oxidized cellulose nanofibers (TOCNs) and magnetic nanoparticles (Fe3O4 NPs) as building blocks by spray-drying followed by template removal method. The resulting porous structured TOCN-Fe3O4 particles possessed unique macro-meso-microporous structures with a highly negative charge ( potential =-55 mV) and sufficient magnetization (Ms = 15 emu/g). The Fe3O4 NPs played an important role not only in enabling effective collection through magnetic separation but also in increasing the specific surface area by inhibiting aggregation of the TOCNs during the drying process while maintaining the intrinsic potential value of the TOCNs. The porous structured TOCN-Fe3O4 particles allowed excellent mass transfer of lysozyme (a model protein adsorbate), which led to high adsorption capacities of >950 mg/g, rapid equilibrium (<10 min), magnetic separation capability, good reusability, and excellent selectivity in a binary solution of lysozyme and bovine serum albumin. © 2020 American Chemical Society.

Item Type: Article
Additional Information: Cited by: 35
Uncontrolled Keywords: Cellulose; Enzymes; Iron Oxides; Mammals; Mass Transfer; Materials Handling; Cellulose; Cellulose nanocrystals; Enzymes; Iron oxides; Magnetic bubbles; Magnetic separation; Magnetite; Mammals; Mass transfer; Materials handling; Nanocellulose; Nanofibers; Reusability; Self assembly; Zeta potential; Bovine serum albumins; Cellulose nanofibers; High adsorption capacity; Meso-microporous structure; Precursor solutions; Protein adsorption; Structured particles; TEMPO-oxidized cellulose nanofibers; Magnetic nanoparticles
Subjects: Q Science > QD Chemistry
Divisions: Vocational School
Depositing User: Sri JUNANDI
Date Deposited: 03 Feb 2025 06:50
Last Modified: 03 Feb 2025 06:50
URI: https://ir.lib.ugm.ac.id/id/eprint/14109

Actions (login required)

View Item
View Item