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Strong size-dependent stress relaxation in electrospun polymer nanofibers
Author(s) -
Matthew C. Wingert,
Zhang Jiang,
Renkun Chen,
Shengqiang Cai
Publication year - 2017
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.4973486
Subject(s) - materials science , viscoelasticity , nanofiber , stress relaxation , polymer , composite material , relaxation (psychology) , stiffness , toughness , glass transition , amorphous solid , ultimate tensile strength , creep , stress (linguistics) , viscosity , chemistry , social psychology , linguistics , philosophy , organic chemistry , psychology
Electrospun polymer nanofibers have garnered significant interest due to their strong size-dependent material properties, such as tensile moduli, strength, toughness, and glass transition temperatures. These properties are closely correlated with polymer chain dynamics. In most applications, polymers usually exhibit viscoelastic behaviors such as stress relaxation and creep, which are also determined by the motion of polymer chains. However, the size-dependent viscoelasticity has not been studied previously in polymer nanofibers. Here, we report the first experimental evidence of significant size-dependent stress relaxation in electrospun Nylon-11 nanofibers as well as size-dependent viscosity of the confined amorphous regions. In conjunction with the dramatically increasing stiffness of nano-scaled fibers, this strong relaxation enables size-tunable properties which break the traditional damping-stiffness tradeoff, qualifying electrospun nanofibers as a promising set of size-tunable materials with an unu...

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