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  • Semiconductor Physics: Principles, Theory and Nanoscale

    Semiconductor Physics by Tiwari, Sandip;

    Principles, Theory and Nanoscale

    Series: Electroscience Series; 3;

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      • Publisher's listprice GBP 96.00
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        43 344 Ft (41 280 Ft + 5% VAT)
      • Discount 10% (cc. 4 334 Ft off)
      • Discounted price 39 010 Ft (37 152 Ft + 5% VAT)

    43 344 Ft

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    Availability

    Estimated delivery time: In stock at the publisher, but not at Prospero's office. Delivery time approx. 3-5 weeks.
    Not in stock at Prospero.

    Why don't you give exact delivery time?

    Delivery time is estimated on our previous experiences. We give estimations only, because we order from outside Hungary, and the delivery time mainly depends on how quickly the publisher supplies the book. Faster or slower deliveries both happen, but we do our best to supply as quickly as possible.

    Product details:

    • Publisher OUP Oxford
    • Date of Publication 24 September 2020

    • ISBN 9780198759867
    • Binding Hardback
    • No. of pages832 pages
    • Size 251x195x48 mm
    • Weight 1862 g
    • Language English
    • Illustrations 468 color line figures
    • 123

    Categories

    Short description:

    This text brings together traditional solid-state approaches from the 20th century with developments of the early part of the 21st century, to reach an understanding of semiconductor physics in its multifaceted forms. It reveals how an understanding of what happens within the material can lead to insights into what happens in its use.

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    Long description:

    The subject of semiconductor physics today includes not only many of the aspects that constitute solid state physics, but also much more. It includes what happens at the nanoscale and at surfaces and interfaces, behavior with few interaction events and few carriers --- electrons and their quasi-particle holes --- in the valence bands, the exchange of energies in various forms, the coupling of energetic events over short and long length scales, quantum reversibility tied to macroscale linearity and eventually to nonlinearities, the thermodynamic and statistical consequences of fluctuation-dissipation, and others. This text brings together traditional solid-state approaches from the 20th century with developments of the early part of the 21st century, to reach an understanding of semiconductor physics in its multifaceted forms. It reveals how an understanding of what happens within the material can lead to insights into what happens in its use.

    The collection of four textbooks in the Electroscience series culminates in a comprehensive understanding of nanoscale devices -- electronic, magnetic, mechanical and optical -- in the 4th volume. The series builds up to this last subject with volumes devoted to underlying semiconductor and solid-state physics.

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    Table of Contents:

    Hamiltonians and solution techniques
    Entropy, information and energy
    Waves and particles in the crystal
    Bandstructures
    Semiconductor surfaces
    Semiconductor interfaces and junctions
    Point perturbations
    Transport and evolution of classical and quantum ensembles
    Scattering-constrained dynamics
    Major scattering processes
    Particle generation and recombination
    Light interactions with semiconductors
    Causality and Green’s functions
    Quantum to macroscale and linear response
    Onsager relationships
    Noise
    Stress and strain effects
    High permittivity dielectrics
    Remote processes
    Quantum confinement and monolayer semiconductors
    Integral transform theorems
    Various useful functions
    Random processes
    Calculus of variation and the Lagrangian method
    A thermodynamics primer
    Maxwell-Boltzmann distribution function
    Spin and spin matrices
    Density of states
    Oscillator strength
    Effective mass tensor
    A and B coefficients, and spontaneous and stimulated emission
    Helmholtz theorem and vector splitting
    Mode coupling and Purcell effect
    Vector and scalar potentials
    Analyticity, Kramers-Kronig and Hilbert transforms
    Particle velocities

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