Human skin provides an interface that transduces external stimuli into electrical signals for communication with the brain. There has been considerable effort to produce soft, flexible, and stretchable electronic skin (E-skin) devices. However, common polymers cannot imitate human skin perfectly due to their poor biocompatibility, biofunctionality, and permeability to many chemicals and biomolecules. Herein, we report on highly flexible, stretchable, conformal, molecule-permeable, and skin-adhering E-skins that combine a metallic nanowire (NW) network and silk protein hydrogel. The silk protein hydrogels offer high stretchability and stability under hydration through the addition of Ca<sup>2+</sup> ions and glycerol. The NW electrodes exhib...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
The human skin is an essential organ of the human body for sensing various changes in the external e...
Electrically conductive hydrogels (ECHs) are attracting much interest in the field of biomaterials s...
Soft and stretchable electronic devices are important in wearable and implantable applications becau...
Hydrogels consist of a cross-linked porous polymer network and water molecules occupying the intersp...
Summary: Skin-like electronics are developing rapidly to realize a variety of applications such as w...
Transparent electrodes that form seamless contact and enable optical interrogation at the electrode-...
Conductive hydrogels are a class of composite materials that consist of hydrated and conducting poly...
Silk fibroin is a type of biomaterials which attracted a lot of research efforts due to its nature b...
With growing interest in the fields of wearable devices, it is crucial yet rather challenging to dev...
The application of soft hydrogels to stretchable devices has attracted increasing attention in defor...
Abstract Electronic skins have received increasing attention in biomedical areas. Current efforts ab...
Skin-mountable microelectronics are garnering substantial interest for various promising application...
Wearable electronic devices are used to perform various electronic functions on the human skin, and ...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
The human skin is an essential organ of the human body for sensing various changes in the external e...
Electrically conductive hydrogels (ECHs) are attracting much interest in the field of biomaterials s...
Soft and stretchable electronic devices are important in wearable and implantable applications becau...
Hydrogels consist of a cross-linked porous polymer network and water molecules occupying the intersp...
Summary: Skin-like electronics are developing rapidly to realize a variety of applications such as w...
Transparent electrodes that form seamless contact and enable optical interrogation at the electrode-...
Conductive hydrogels are a class of composite materials that consist of hydrated and conducting poly...
Silk fibroin is a type of biomaterials which attracted a lot of research efforts due to its nature b...
With growing interest in the fields of wearable devices, it is crucial yet rather challenging to dev...
The application of soft hydrogels to stretchable devices has attracted increasing attention in defor...
Abstract Electronic skins have received increasing attention in biomedical areas. Current efforts ab...
Skin-mountable microelectronics are garnering substantial interest for various promising application...
Wearable electronic devices are used to perform various electronic functions on the human skin, and ...
Electrically conductive materials that mimic physical and biological properties of tissues are urgen...
The human skin is an essential organ of the human body for sensing various changes in the external e...
Electrically conductive hydrogels (ECHs) are attracting much interest in the field of biomaterials s...