Lignin Dissolution and Direct Ultrasmall‐Lignin‐Nanoparticle Formation in Acidic and Alkaline Deep Eutectic Solvents: A Molecular‐Level Insight

X Xin Yue J Jinxin Lin O Otto Mankinen T Terhi Suopajärvi (Fiber and Particle Engineering Research Unit University of Oulu Oulu 90014 Finland) M Marja Mikola (Chemical Process Engineering Research Unit University of Oulu Oulu 90014 Finland) A Atte Mikkelson (VTT Technical Research Center of Finland Ltd. Espoo 02150 Finland) H Harri Huttunen (Unit of Measurement Technology MITY University of Oulu Oulu 87400 Finland) L Liheng Chen J Juha Ahola (Chemical Process Engineering Research Unit University of Oulu Oulu 90014 Finland) V Ville‐Veikko Telkki (NMR Research Unit University of Oulu Oulu 90014 Finland) S Shirong Sun (School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore) H Henrikki Liimatainen (Fiber and Particle Engineering Research Unit University of Oulu Oulu 90014 Finland)

Abstract

Abstract Although deep eutectic solvents (DESs) have demonstrated significant potential in lignin processing, their influence on molecular stacking and conformational evolution during lignin dissolution and nanoparticle formation remains insufficiently understood. Here, we develop a green, straightforward, and single‐step approach to produce self‐assembled lignin nanoparticles (LNPs). The LNPs obtained using the acidic DES method exhibited a great size reduction, with an average size approximately one‐ninth of that produced by conventional solvent‐exchange methods. To gain mechanistic insights into the reconstruction, dissolution, and self‐assembly of lignin in DESs, we integrate structural characterization with molecular dynamics simulations. Specifically, we simulate the dynamic behavior and configurational states of high‐molar‐mass lignin models (4,182 g mol −1 ) in aqueous solvent systems. The results reveal the critical role of molecular structure, intra/intermolecular π–π interactions, stacked conformations, solvent‐specific effects in determining the size and compactness of LNPs. Notably, the DES stabilizes lateral‐shifted configurations, promoting the formation of small and compact LNPs. In contrast, the tetrahydrofuran/H 2 O solvent system favors offset‐stacked configurations and hydrophobic interactions, leading to larger, spherical LNPs. Overall, our findings offer new insights into the underlying mechanisms of LNP formation using DESs, demonstrating the possibility of regulating and controlling lignin assemblies through solvent parameters.

Article Details

Volume / Issue Vol. 64, Issue 30
Published July 21, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

X

Xin Yue

J

Jinxin Lin

O

Otto Mankinen

T

Terhi Suopajärvi

Fiber and Particle Engineering Research Unit University of Oulu Oulu 90014 Finland

M

Marja Mikola

Chemical Process Engineering Research Unit University of Oulu Oulu 90014 Finland

A

Atte Mikkelson

VTT Technical Research Center of Finland Ltd. Espoo 02150 Finland

H

Harri Huttunen

Unit of Measurement Technology MITY University of Oulu Oulu 87400 Finland

L

Liheng Chen

J

Juha Ahola

Chemical Process Engineering Research Unit University of Oulu Oulu 90014 Finland

V

Ville‐Veikko Telkki

NMR Research Unit University of Oulu Oulu 90014 Finland

S

Shirong Sun

School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore

H

Henrikki Liimatainen

Fiber and Particle Engineering Research Unit University of Oulu Oulu 90014 Finland