Journal of Applied Physics · 2012 · 11 citations · 27 references
ElectrohydrodynamicsEngineeringMicroscopyCharge TransportDielectric LayersNanoelectronicsCharge DensityNanometrologyElectrostatic Force MicroscopyCharge Carrier TransportBiophysicsElectrical EngineeringPhysicsNanotechnologyMicroelectronicsMicrofabricationConfined Water HydrodynamicsScanning Probe MicroscopySurface ScienceApplied PhysicsScanning Force MicroscopyMedicineElectrical Insulation
In this paper, we present a quantitative method to measure charge density on dielectric layers using electrostatic force microscopy. As opposed to previous reports, our method, which is based on force curve measurements, does not require preliminary knowledge of the tip-sample capacitance and its derivatives. Using this approach, we have been able to quantify lateral and temporal SiO2 surface charge distribution and have unveiled a gate-induced charge redistribution mechanism which takes place in the vicinity of grounded electrodes. We argue that this mechanism constitutes a dominant factor in the hysteresis phenomenon, which is frequently observed in the transfer characteristics of nano-scale devices.
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M. Nonnenmacher, M. O’Boyle, H. K. Wickramasinghe · Applied Physics Letters · 1991 · 2.3K citations
Hysteresis Caused by Water Molecules in Carbon Nanotube Field-Effect Transistors
W. Ray Kim, Ali Javey, Ophir Vermesh et al. · Nano Letters · 2003 · 962 citations
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Scanned Conductance Microscopy of Carbon Nanotubes and λ-DNA
Marc Bockrath, Nina Marković, Adam Shepard et al. · Nano Letters · 2002 · 144 citations