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The book serves as a synergistic link between the development of
mathematical models and the emergence of stochastic (Monte Carlo)
methods applied for the simulation of current transport in
electronic devices. Regarding the models, the historical evolution
path, beginning from the classical charge carrier transport models
for microelectronics to current quantum-based nanoelectronics, is
explicatively followed. Accordingly, the solution methods are
elucidated from the early phenomenological single particle
algorithms applicable for stationary homogeneous physical
conditions up to the complex algorithms required for quantum
transport, based on particle generation and annihilation. The book
fills the gap between monographs focusing on the development of the
theory and the physical aspects of models, their application, and
their solution methods and monographs dealing with the purely
theoretical approaches for finding stochastic solutions of Fredholm
integral equations.
The book serves as a synergistic link between the development of
mathematical models and the emergence of stochastic (Monte Carlo)
methods applied for the simulation of current transport in
electronic devices. Regarding the models, the historical evolution
path, beginning from the classical charge carrier transport models
for microelectronics to current quantum-based nanoelectronics, is
explicatively followed. Accordingly, the solution methods are
elucidated from the early phenomenological single particle
algorithms applicable for stationary homogeneous physical
conditions up to the complex algorithms required for quantum
transport, based on particle generation and annihilation. The book
fills the gap between monographs focusing on the development of the
theory and the physical aspects of models, their application, and
their solution methods and monographs dealing with the purely
theoretical approaches for finding stochastic solutions of Fredholm
integral equations.
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