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Can I read Highly Stretchable and Ionically Conductive Membranes with Semi‐Interpenetrating Network Architecture for Truly All‐Solid‐State Microactuators and Microsensors on EtoBox?

Highly Stretchable and Ionically Conductive Membranes with Semi‐Interpenetrating Network Architecture for Truly All‐Solid‐State Microactuators and Microsensors by Frédéric Braz Ribeiro; Bin Ni; Giao T. M. Nguyen; Eric Cattan; Alexander S. Shaplov; Frédéric Vidal; Cédric Plesse is a Materials Science article available to read on EtoBox.

What is Highly Stretchable and Ionically Conductive Membranes with Semi‐Interpenetrating Network Architecture for Truly All‐Solid‐State Microactuators and Microsensors about?

stretchable ionic systems able to store electrochemical energy or to act as electromechanical transducers such as artificial muscles or sensors. This trend is accelerated by the fast rise of the ionotronics which, as a change of paradigm, uses the ions of soft ionic conductors as charge carriers instead of the electrons from stiff and brittle materials. Consequently the development of soft materials combining both high ionic conductivity and stretchability enabled transparent and stretchable ionic devices. However, liquid electrolytes contained in such functional devices tend to evaporate, sweat out or leak out and result now in a pressing demand of liquid-free truly all-solid-state ionic systems. Polymeric ionic liquids (PILs), also referred as polymerized ionic liquids or poly(ionic liquids), are probably the most promising candidates to develop liquidfree ionoelastomers. PILs are a sub-class of poly electrolytes in which either anions or cations are fixed to the polymer backbone while the counterions remain mobile without the addition of a liquid phase thanks to the highly dissociated nature of their ionic liquid-like structures. They combine the inherent properties of ionic liq

Who reads Highly Stretchable and Ionically Conductive Membranes with Semi‐Interpenetrating Network Architecture for Truly All‐Solid‐State Microactuators and Microsensors?

It is typically read by researchers, students, and practitioners in Materials Science.

Author
Frédéric Braz Ribeiro; Bin Ni; Giao T. M. Nguyen; Eric Cattan; Alexander S. Shaplov; Frédéric Vidal; Cédric Plesse
Publisher
Wiley
Published
2023
Language
EN
Field
Materials Science (Physical Sciences)