Maize Parenchyma to Nanocellulose: A Facile Preparation through High-Speed Shear Induced during Coagulation

Abstract Developing environmentally friendly and energy-efficient routes to nanocellulose remains challenging. Herein, we developed a gentle bottom-up strategy to prepare nanocellulose from maize parenchyma by combining concentration regulation with high-speed shear during coagulation. This approach directed cellulose chain aggregation and produced regenerated cellulose particles with irregular edges and sizes of 10−50 nm. The resulting nanocellulose film exhibited a favorable balance of mechanical properties, with a Young’s modulus of 3.10 GPa and a work of fracture of 39.83 MJ m−3. Molecular dynamics (MD) simulations showed that constrained shear promoted cellulose chains from random-coil conformations to extended and oriented states, facilitating hydrogen-bond reconstruction and cellulose II ordering. Solid-state 13C CP/MAS NMR further confirmed enhanced molecular ordering, with CrINMR increasing from 48.90% for CF-1.0 to 60.06% for CF-0.2. This work provides a sustainable route for valorizing agricultural waste into high-performance nanocellulose materials.

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Publication Details

Journal
Biomacromolecules
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.biomac.6c01381
Primary Topic
Advanced Cellulose Research Studies
Type
article
Field-Weighted Citation Impact
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article

Maize Parenchyma to Nanocellulose: A Facile Preparation through High-Speed Shear Induced during Coagulation

Lincai Peng, 田中 武司, Xiaoning Tang, Xin Gao et al.
Biomacromolecules
Advanced Cellulose Research Studies
article

Maize Parenchyma to Nanocellulose: A Facile Preparation through High-Speed Shear Induced during Coagulation

Lincai Peng, 田中 武司, Xiaoning Tang, Xin Gao, Heng Zhang, Qiuyue Hu, Yuanjie Ma, Qiming Li
article en

Abstract

Abstract Developing environmentally friendly and energy-efficient routes to nanocellulose remains challenging. Herein, we developed a gentle bottom-up strategy to prepare nanocellulose from maize parenchyma by combining concentration regulation with high-speed shear during coagulation. This approach directed cellulose chain aggregation and produced regenerated cellulose particles with irregular edges and sizes of 10−50 nm. The resulting nanocellulose film exhibited a favorable balance of mechanical properties, with a Young’s modulus of 3.10 GPa and a work of fracture of 39.83 MJ m−3. Molecular dynamics (MD) simulations showed that constrained shear promoted cellulose chains from random-coil conformations to extended and oriented states, facilitating hydrogen-bond reconstruction and cellulose II ordering. Solid-state 13C CP/MAS NMR further confirmed enhanced molecular ordering, with CrINMR increasing from 48.90% for CF-1.0 to 60.06% for CF-0.2. This work provides a sustainable route for valorizing agricultural waste into high-performance nanocellulose materials.

Biomacromolecules
Kunming University of Science and Technology (CN), Chinese Academy of Sciences (CN)
Openalex Percentile: Top 28%
Advanced Cellulose Research Studies
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Maize Parenchyma to Nanocellulose: A Facile Preparation through High-Speed Shear Induced during Coagulation — Lincai Peng, 田中 武司, et al. · Biomacromolecules (2026) | TGRS Research Map | TGRS