Modeling nanoscale capacitance presents particular challenge because of dynamic contribution from electrodes, which can usually be neglected in modeling macroscopic capacitance and nanoscale conductance. We present a model to calculate capacitances of nano-gap configurations and define effective capacitances of nanoscale structures. The model is implemented by using a classical atomic charge-dipole approximation and applied to calculate capacitance of a carbon nanotube nano-gap and effective capacitance of a buckyball inside the nano-gap. Our results show that capacitance of the carbon nanotube nano-gap increases with length of electrodes which demonstrates the important roles played by the electrodes in dynamic properties of nanoscale circuits. © 2013 © 2013 Author(s).
CITATION STYLE
Lu, J. Q., Gonzalez, J., Sierra, C., & Li, Y. (2013). Nanoscale capacitance: A classical charge-dipole approximation. AIP Advances, 3(10). https://doi.org/10.1063/1.4824622
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