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Title: Accessing pluripotent materials through tempering of dynamic covalent polymer networks
Pluripotency, which is defined as a system not fixed as to its developmental potentialities, is typically associated with biology and stem cells. Inspired by this concept, we report synthetic polymers that act as a single “pluripotent” feedstock and can be differentiated into a range of materials that exhibit different mechanical properties, from hard and brittle to soft and extensible. To achieve this, we have exploited dynamic covalent networks that contain labile, dynamic thia-Michael bonds, whose extent of bonding can be thermally modulated and retained through tempering, akin to the process used in metallurgy. In addition, we show that the shape memory behavior of these materials can be tailored through tempering and that these materials can be patterned to spatially control mechanical properties.  more » « less
Award ID(s):
2104694 2011854
PAR ID:
10498677
Author(s) / Creator(s):
; ; ; ; ; ; ; ; ;
Publisher / Repository:
AAAS
Date Published:
Journal Name:
Science
Volume:
383
Issue:
6682
ISSN:
0036-8075
Page Range / eLocation ID:
545 to 551
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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