Ultrastable Glassy Polymer Films with an Ultradense Brush Morphology.

Zuo, Biao; Li, Cheng; Xu, Quanyin; Randazzo, Katelyn; Jiang, Naisheng; Wang, Xinping; Priestley, Rodney D · ACS Nano · 2021

basic_science · Level V

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Abstract

Glassy polymer films with extreme stability could enable major advancements in a range of fields that require the use of polymers in confined environments. Yet, from a materials design perspective, we now know that the glass transition temperature (<i>T</i><sub>g</sub>) and thermal expansion of polymer thin films can be dramatically different from those characteristics of the bulk, <i>i.e.</i>, exhibiting confinement-induced diminished thermal stability. Here, we demonstrate that polymer brushes with an ultrahigh grafting density, <i>i.e.</i>, an ultradense brush morphology, exhibit a significant enhancement in thermal stability, as manifested by an exceptionally high <i>T</i><sub>g</sub> and low expansivity. For instance, a 5 nm thick polystyrene brush film exhibits an ∼75 K increase in <i>T</i><sub>g</sub> and ∼90% reduction in expansivity compared to a spin-cast film of similar thickness. Our results establish how morphology can overcome confinement and interfacial effects in controlling thin-film material properties and how this can be achieved by the dense packing and molecular ordering in the amorphous state of ultradense brushes prepared by surface-initiated atom transfer radical polymerization in combination with a self-assembled monolayer of initiators.