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Molecular engineering of nanocellulose-poly(lactic acid) bio-nanocomposite interface by reactive surface grafting from copolymerization

Publiceringsår

2025

Upphovspersoner

Gaoyuan Ye; Qiwen Yong; Liqiu Hu; Emil Rosqvist; Jouko Peltonen; Yingcheng Hu; Wenyang Xu; Chunlin Xu

Abstrakt

Poly(lactic acid) (PLA) is a widely reusable polymer, but its practical applications are greatly constrained by low toughness and poor crystallinity. In this study, the modified cellulose nanocrystal (CNC) was designed as a reinforcement through surface copolymerization of caprolactone (CL) and allyl caprolactone (ACL) to enhance the properties of PLA. The surface molecular engineering of reactive core-shell nanofillers (allyl polycaprolactone-grafted CNC, or CNC-g-APCL) effectively improved the interfacial compatibility between PLA and CNC through a straightforward in situ reactive extrusion process. The presence of elastic polycaprolactone (PCL) and allyl polycaprolactone (APCL) rendered good energy dissipation as evidenced by the improved toughness and elongation at break of the PLA/CNC hybrid composites. More importantly, the integrated CNC composite presented an extremely high crystallinity of 45.1%, which is top-ranking among all reported studies on PLA/CNC nanocomposites. In summary, this research introduces an innovative method for designing nanocomposites with improved interfacial compatibility between the matrix and components by grafting copolymerization and reactive extrusion, providing a universal solution to the mechanical and crystalline deficiencies often observed in biodegradable polymers.
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Organisationer och upphovspersoner

Åbo Akademi

Rosqvist Emil Orcid -palvelun logo

Peltonen Jouko

Xu Chunlin Orcid -palvelun logo

Ye Gaoyuan

Hu Liqiu

Yong Qiwen

Publikationstyp

Publikationsform

Artikel

Moderpublikationens typ

Tidning

Artikelstyp

En originalartikel

Målgrupp

Vetenskaplig

Kollegialt utvärderad

Kollegialt utvärderad

UKM:s publikationstyp

A1 Originalartikel i en vetenskaplig tidskrift

Publikationskanalens uppgifter

Volym

306

Nummer

Part 1

Publikationsforum

58271

Publikationsforumsnivå

1

Öppen tillgång

Öppen tillgänglighet i förläggarens tjänst

Ja

Öppen tillgång till publikationskanalen

Delvis öppen publikationskanal

Parallellsparad

Ja

Övriga uppgifter

Vetenskapsområden

Materialteknik

Nyckelord

[object Object],[object Object],[object Object]

Identifierade tema

[object Object]

Förlagets internationalitet

Internationell

Språk

engelska

Internationell sampublikation

Ja

Sampublikation med ett företag

Nej

DOI

10.1016/j.ijbiomac.2025.141371

Publikationen ingår i undervisnings- och kulturministeriets datainsamling

Ja