Polymer semiconductors (PSCs) are an essential component of organic field-effect transistors (OFETs), but their potential for stretchable electronics is limited by their brittleness and failure susceptibility upon strain. Herein, a covalent connection of two state-of-the-art polymers—semiconducting poly-diketo-pyrrolopyrrole-thienothiophene (PDPP-TT) and elastomeric poly(dimethylsiloxane) (PDMS)—in a single triblock copolymer (TBC) chain is reported, which enables high charge carrier mobility and low modulus in one system. Three TBCs containing up to 65 wt% PDMS were obtained, and the TBC with 65 wt% PDMS content exhibits mobilities up to 0.1 cm2 V−1 s−1, in the range of the fully conjugated reference polymer PDPP-TT (0.7 cm2 V−1 s−1). The ...
Abstract Polymer semiconductors (PSCs) are essential active materials in mechanically stretchable el...
International audienceFor wearable applications such as electronic skin and biosensors, stretchable ...
The pursuit of intelligent optoelectronics could have profound implications on our future daily life...
During past years, organic-based electronic devices revealed high promise to supplement the ubiquito...
For wearable and implantable electronics applications, developing intrinsically stretchable polymer ...
Previous breakthroughs in stretchable electronics stem from strain engineering and nanocomposite app...
Intrinsically stretchable semiconductors will facilitate the realization of seamlessly integrated st...
Polymer semiconductors are promising materials for stretchable, wearable, and implantable devices du...
In this dissertation, bio-based and stretchable semiconducting polymers through elegant design of co...
This paper describes the synthesis and characterization of a class of highly stretchable and degrada...
Shear coating is a promising deposition method for upscaling device fabrication and enabling high th...
The next materials challenge in organic stretchable electronics is the development of a fully degrad...
Next-generation wearable electronics require enhanced mechanical robustness and device complexity. B...
Semiconducting diblock copolymers of polyethylene (PE) and regioregular poly(3-hexylthiophene) (P3HT...
Highly stretchable, high-mobility, and free-standing coplanar-type all-organic transistors based on ...
Abstract Polymer semiconductors (PSCs) are essential active materials in mechanically stretchable el...
International audienceFor wearable applications such as electronic skin and biosensors, stretchable ...
The pursuit of intelligent optoelectronics could have profound implications on our future daily life...
During past years, organic-based electronic devices revealed high promise to supplement the ubiquito...
For wearable and implantable electronics applications, developing intrinsically stretchable polymer ...
Previous breakthroughs in stretchable electronics stem from strain engineering and nanocomposite app...
Intrinsically stretchable semiconductors will facilitate the realization of seamlessly integrated st...
Polymer semiconductors are promising materials for stretchable, wearable, and implantable devices du...
In this dissertation, bio-based and stretchable semiconducting polymers through elegant design of co...
This paper describes the synthesis and characterization of a class of highly stretchable and degrada...
Shear coating is a promising deposition method for upscaling device fabrication and enabling high th...
The next materials challenge in organic stretchable electronics is the development of a fully degrad...
Next-generation wearable electronics require enhanced mechanical robustness and device complexity. B...
Semiconducting diblock copolymers of polyethylene (PE) and regioregular poly(3-hexylthiophene) (P3HT...
Highly stretchable, high-mobility, and free-standing coplanar-type all-organic transistors based on ...
Abstract Polymer semiconductors (PSCs) are essential active materials in mechanically stretchable el...
International audienceFor wearable applications such as electronic skin and biosensors, stretchable ...
The pursuit of intelligent optoelectronics could have profound implications on our future daily life...