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Shape Memory Properties of Polystyrene-block-poly(ethylene-co-butylene)-block-polystyrene (SEBS) ABA Triblock Copolymer Thermoplastic Elastomers AITranslate

University of Akron; University of Akron; Purdue University; University of Akron
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Publisher: ACS
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Abstract AITranslate

This work demonstrates that neat polystyrene-block-poly(ethylene-co-butylene)-block-poly styrene (SEBS) displays thermally responsive shape memory properties. The shape memory properties were quantitatively investigated under uniaxial tension using a dynamic mechanical analyzer and manual stretching. The shape memory properties of SEBS were found to depend on both the molecular weight of the polymer and on the shape programming conditions, including the programming temperature, applied strain, and annealing time at elevated temperature under load. The shape memory mechanism is proposed to be a result of partial stress relaxation of the block copolymer network under load and the formation of a second network with a lower glass transition temperature. This second network counterbalances the initially stretched network producing fixity and weakens first on heating, allowing recovery. Due to the unique mechanism of shape memory where the secondary network is generated from the initial network, achieving higher fixity generally occurs at the expense of high recovery and vice versa.

KeyWords AITranslate

shape memory polymer dynamic mechanical analysis (DMA) polystyreneblockpoly(ethylenecobutylene)blockpolystyrene Show More
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Basic Information:

DOI:https://doi.org/10.1021/acsapm.8b00139

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Citation Information:

This work demonstrates that neat polystyrene-block-poly(ethylene-co-butylene)-block-poly styrene (SEBS) displays thermally responsive shape memory properties. The shape memory properties were quantitatively investigated under uniaxial tension using a dynamic mechanical analyzer and manual stretching. The shape memory properties of SEBS were found to depend on both the molecular weight of the polymer and on the shape programming conditions, including the programming temperature, applied strain, and annealing time at elevated temperature under load. The shape memory mechanism is proposed to be a result of partial stress relaxation of the block copolymer network under load and the formation of a second network with a lower glass transition temperature. This second network counterbalances the initially stretched network producing fixity and weakens first on heating, allowing recovery. Due to the unique mechanism of shape memory where the secondary network is generated from the initial network, achieving higher fixity generally occurs at the expense of high recovery and vice versa.

quote

GB/T 7714-2015 [1] Marcos Pantoja, PeiZhen Jian, Miko Cakmak, et al. ACS Applied Polymer Materials, 2019(1). DOI:10.1021/acsapm.8b00139.
MLA [1] Marcos Pantoja, et al., ACS Applied Polymer Materials, no. 1, 2019, https://doi.org/10.1021/acsapm.8b00139.
APA [1] Marcos Pantoja, PeiZhen Jian, Miko Cakmak, & Kevin A. Cavicchi. (2019). ACS Applied Polymer Materials(1). https://doi.org/10.1021/acsapm.8b00139
IEEE [1] Marcos Pantoja, PeiZhen Jian, Miko Cakmak, and Kevin A. Cavicchi, ACS Applied Polymer Materials, no. 1, 2019, doi: 10.1021/acsapm.8b00139. keywords: {shape memory polymer;dynamic mechanical analysis (DMA);polystyreneblockpoly(ethylenecobutylene)blockpolystyrene;Show More}