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1.
Nat Commun ; 6: 6566, 2015 Mar 18.
Article in English | MEDLINE | ID: mdl-25782446

ABSTRACT

Hard and soft structural composites found in biology provide inspiration for the design of advanced synthetic materials. Many examples of bio-inspired hard materials can be found in the literature; far less attention has been devoted to soft systems. Here we introduce deterministic routes to low-modulus thin film materials with stress/strain responses that can be tailored precisely to match the non-linear properties of biological tissues, with application opportunities that range from soft biomedical devices to constructs for tissue engineering. The approach combines a low-modulus matrix with an open, stretchable network as a structural reinforcement that can yield classes of composites with a wide range of desired mechanical responses, including anisotropic, spatially heterogeneous, hierarchical and self-similar designs. Demonstrative application examples in thin, skin-mounted electrophysiological sensors with mechanics precisely matched to the human epidermis and in soft, hydrogel-based vehicles for triggered drug release suggest their broad potential uses in biomedical devices.


Subject(s)
Biomimetic Materials , Materials Testing , Biocompatible Materials/chemistry , Biomimetics , Drug Delivery Systems , Elastic Modulus , Electronics , Electrophysiology , Epidermis/metabolism , Finite Element Analysis , Hardness , Humans , Hydrogels/chemistry , Imides/chemistry , Skin , Stress, Mechanical , Tensile Strength , Tissue Engineering/methods
2.
Nat Commun ; 5: 4779, 2014 Sep 03.
Article in English | MEDLINE | ID: mdl-25182939

ABSTRACT

Research in stretchable electronics involves fundamental scientific topics relevant to applications with importance in human healthcare. Despite significant progress in active components, routes to mechanically robust construction are lacking. Here, we introduce materials and composite designs for thin, breathable, soft electronics that can adhere strongly to the skin, with the ability to be applied and removed hundreds of times without damaging the devices or the skin, even in regions with substantial topography and coverage of hair. The approach combines thin, ultralow modulus, cellular silicone materials with elastic, strain-limiting fabrics, to yield a compliant but rugged platform for stretchable electronics. Theoretical and experimental studies highlight the mechanics of adhesion and elastic deformation. Demonstrations include cutaneous optical, electrical and radio frequency sensors for measuring hydration state, electrophysiological activity, pulse and cerebral oximetry. Multipoint monitoring of a subject in an advanced driving simulator provides a practical example.


Subject(s)
Blood Gas Monitoring, Transcutaneous/instrumentation , Electronics/instrumentation , Equipment Design , Monitoring, Physiologic/instrumentation , Oximetry/instrumentation , Blood Gas Monitoring, Transcutaneous/methods , Brain/physiology , Elasticity , Electrophysiological Phenomena , Humans , Monitoring, Physiologic/methods , Oximetry/methods , Silicones/chemistry , Skin/metabolism
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