The structural and electrostatic properties of two similar-sized globular proteins, hen egg-white lysozyme and bovine milk \(\alpha\) lactalbumin, adsorbed to microspheres of a negatively charged polystyrene latex, are determined from adsorption isotherms, plateau adsorption values, and isothermal t
Structural and Electrostatic Complexity at a Pentacene/Insulator Interface
✍ Scribed by K. Puntambekar; J. Dong; G. Haugstad; C. D. Frisbie
- Publisher
- John Wiley and Sons
- Year
- 2006
- Tongue
- English
- Weight
- 529 KB
- Volume
- 16
- Category
- Article
- ISSN
- 1616-301X
No coin nor oath required. For personal study only.
✦ Synopsis
Abstract
The properties of organic‐semiconductor/insulator (O/I) interfaces are critically important to the operation of organic thin‐film transistors (OTFTs) currently being developed for printed flexible electronics. Here we report striking observations of structural defects and correlated electrostatic‐potential variations at the interface between the benchmark organic semiconductor pentacene and a common insulator, silicon dioxide. Using an unconventional mode of lateral force microscopy, we generate high‐contrast images of the grain‐boundary (GB) network in the first pentacene monolayer. Concurrent imaging by Kelvin probe force microscopy reveals localized surface‐potential wells at the GBs, indicating that GBs will serve as charge‐carrier (hole) traps. Scanning probe microscopy and chemical etching also demonstrate that slightly thicker pentacene films have domains with high line‐dislocation densities. These domains produce significant changes in surface potential across the film. The correlation of structural and electrostatic complexity at O/I interfaces has important implications for understanding electrical transport in OTFTs and for defining strategies to improve device performance.
📜 SIMILAR VOLUMES
## Abstract Continuous‐flow separation of nanoparticles (NPs) (15 and 39 nm) is demonstrated based on electrostatic sieving at a micro‐nanofluidic interface. The interface is realized in a poly(dimethylsiloxane) device with a nanoslit of 525 nm laterally spanning the microfluidic channel (aspect ra