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With the vigorous development of organic materials, organic electrochemical transistors (OECTs) have attracted considerable attention in the field of organic electronics owing to their high transconductances, low operating voltages (< 1 V), and excellent biocompatibility. However, the absence of stretchable semiconductor films for OECTs, where mechanical deformation occurs, induces a consequent degradation in electrical performance. Here, we report the fabrication of high-performance stretchable semiconductor films by incorporating a blend organic semiconductor layer, which is composed of poly(3-hexylthiophene) (P3HT) and polyethylene oxide (PEO), and the development of fully flexible OECTs. To address this issue, the stretchable semiconductor films are assembled into a freestanding film by the air/water interface assembly technique. Furthermore, adjusting the number of stacked layers of the P3HT/PEO film allows controllable OECT output without compromising the on/off current ratio. Benefiting from the elastic blend semiconductor films, the corresponding stretchable OECTs exhibit robust mechanical endurance and maintain their reliable electrical characteristics when subjected to a 40% strain. Besides, artificial synapses based on these OECTs showed good stability upon 30% strain. This work paves the way for a universal design strategy to achieve high-performance stretchable OECT devices and could be extended to other flexible/stretchable electronics.
Peng et al. (Sat,) studied this question.
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