| Literature DB >> 29238288 |
Weiguo Huang1, Kalpana Besar1, Yong Zhang2, Shyuan Yang3, Gregory Wiedman1, Yu Liu1, Wenmin Guo1, Jian Song4, Kevin Hemker5, Kalina Hristova1, Ionnis J Kymissis3, Howard E Katz6.
Abstract
Printable and flexible electronics attract sustained attention for their low cost, easy scale up, and potential application in wearable and implantable sensors. However, they are susceptible to scratching, rupture, or other damage from bending or stretching due to their "soft" nature compared to their rigid counterparts (Si-based electronics), leading to loss of functionality. Self-healing capability is highly desirable for these "soft" electronic devices. Here, a versatile self-healing polymer blend dielectric is developed with no added salts and it is integrated into organic field transistors (OFETs) as a gate insulator material. This polymer blend exhibits an unusually high thin film capacitance (1400 nF cm -2 at 120 nm thickness and 20-100 Hz). Furthermore, it shows pronounced electrical and mechanical self-healing behavior, can serve as the gate dielectric for organic semiconductors, and can even induce healing of the conductivity of a layer coated above it together with the process of healing itself. Based on these attractive properties, we developed a self-healable, low-voltage operable, printed, and flexible OFET for the first time, showing promise for vapor sensing as well as conventional OFET applications.Entities:
Year: 2015 PMID: 29238288 PMCID: PMC5724795 DOI: 10.1002/adfm.201404228
Source DB: PubMed Journal: Adv Funct Mater ISSN: 1616-301X Impact factor: 18.808