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Enzymatic degradability and release properties of graphene oxide/silk fibroin nanocomposite films
Author(s) -
Xu Xiafan,
Ren Zilong,
Zhang Meiqi,
Ma Lin
Publication year - 2021
Publication title -
journal of applied polymer science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.575
H-Index - 166
eISSN - 1097-4628
pISSN - 0021-8995
DOI - 10.1002/app.51173
Subject(s) - fibroin , nanocomposite , materials science , graphene , oxide , random coil , degradation (telecommunications) , composite material , chemical engineering , silk , chemistry , nanotechnology , crystallography , circular dichroism , telecommunications , engineering , computer science , metallurgy
The structure evolution of silk fibroin (SF) in the nanocomposite films with graphene oxide (GO) was investigated and related to the enzymatic degradability and release property. The interaction with GO was found to induce conformation transition of SF from random coil to β‐sheet. However, the surface binding constrained the rearrangement of the silk chains, leading to a decrease of β‐sheet when GO content was more than 1.0%. The crystal structure of SF played a key role in the degradation of GO/SF composites. The preferential degradation of the hydrophilic blocks resulted in a faster degradation of SF films with higher β‐sheet content. The addition of GO to SF matrix led to a slower release and a reduction of the burst release of RhB, the model compound. The release profile was well fitted to the Rigter–Peppas equation, from which the characteristic constant decreased and the diffusional exponent increased with increasing GO content but quickly leveled off when GO content was more than 1.0%. Degradation of the composites had little influence on the characteristic constant of RhB release, however, led to an increased diffusional exponent, which was more evident for the composites with higher β‐sheet content.

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