We discuss the limitations of the orthodox Coulomb-blockade theory when applied to silicon quantum dots in the nanometer range and we present a simple Poisson-Schrodinger model to evaluate the quantum contribution in these cases. This contribution can be seen as a quantum capacitance in series with the sum of capacitance around the dot. This simple model gives results similar to a more sophisticated one which includes Pauli principle, with a precision of the order of room-temperature thermal-energy kT. Finally we show that the simple model can be easily included in micro-electronic simulators and therefore can be very effective to predict new properties of future quantum devices. All the effects discussed in this paper are room-temperature effects.
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Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, SydneyCentre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Weber B.
Tan Y.H.M.
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Network for Computational Nanotechnology, Birck Nanotechnology Center, Purdue University, West Lafayette, IN 47907Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Tan Y.H.M.
Mahapatra S.
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Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Department of Physics, Indian Institute of Technology Bombay, PowaiCentre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Mahapatra S.
Watson T.F.
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Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, SydneyCentre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Watson T.F.
Ryu H.
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National Institute of Supercomputing and Networking, Korea Institute of Science and Technology Information, Yuseong-gu, Daejeon 305-806Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Ryu H.
Rahman R.
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Network for Computational Nanotechnology, Birck Nanotechnology Center, Purdue University, West Lafayette, IN 47907Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Rahman R.
Hollenberg L.C.L.
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Centre for Quantum Computation and Communication Technology, School of Physics, University of Melbourne, ParkvilleCentre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Hollenberg L.C.L.
Klimeck G.
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Network for Computational Nanotechnology, Birck Nanotechnology Center, Purdue University, West Lafayette, IN 47907Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney
Klimeck G.
Simmons M.Y.
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Centre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, SydneyCentre of Excellence for Quantum Computation and Communication Technology, School of Physics, University of New South Wales, Sydney