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Knowledge of the refractive indices and absorption coefficients of
semiconductors is especially import in the design and analysis of
optical and optoelectronic devices. The determination of the
optical constants of semiconductors at energies beyond the
fundamental absorption edge is also known to be a powerful way of
studying the electronic energy-band structures of the
semiconductors. The purpose of this book is to give tabulated
values and graphical information on the optical constants of the
most popular semiconductors over the entire spectral range. This
book presents data on the optical constants of crystalline and
amorphous semiconductors. A complete set of the optical constants
are presented in this book. They are: the complex dielectric
constant (E=e.+ieJ, complex refractive index (n*=n+ik), absorption
coefficient (a.), and normal-incidence reflectivity (R). The
semiconductor materials considered in this book are the group-IV
elemental and binary, llI-V, IT-VI, IV-VI binary semiconductors,
and their alloys. The reader will fmd the companion book "Optical
Properties of Crystalline and Amorphous Semiconductors: Materials
and Fundamental Principles" useful since it emphasizes the basic
material properties and fundamental prinCiples.
Optical Properties of Crystalline and Amorphous Semiconductors:
Materials and Fundamental Principles presents an introduction to
the fundamental optical properties of semiconductors. This book
presents tutorial articles in the categories of materials and
fundamental principles (Chapter 1), optical properties in the
reststrahlen region (Chapter 2), those in the interband transition
region (Chapters 3 and 4) and at or below the fundamental
absorption edge (Chapter 5). Optical Properties of Crystalline and
Amorphous Semiconductors: Materials and Fundamental Principles is
presented in a form which could serve to teach the underlying
concepts of semiconductor optical properties and their
implementation. This book is an invaluable resource for device
engineers, solid-state physicists, material scientists and students
specializing in the fields of semiconductor physics and device
engineering.
Knowledge of the refractive indices and absorption coefficients of
semiconductors is especially import in the design and analysis of
optical and optoelectronic devices. The determination of the
optical constants of semiconductors at energies beyond the
fundamental absorption edge is also known to be a powerful way of
studying the electronic energy-band structures of the
semiconductors. The purpose of this book is to give tabulated
values and graphical information on the optical constants of the
most popular semiconductors over the entire spectral range. This
book presents data on the optical constants of crystalline and
amorphous semiconductors. A complete set of the optical constants
are presented in this book. They are: the complex dielectric
constant (E=e.+ieJ, complex refractive index (n*=n+ik), absorption
coefficient (a.), and normal-incidence reflectivity (R). The
semiconductor materials considered in this book are the group-IV
elemental and binary, llI-V, IT-VI, IV-VI binary semiconductors,
and their alloys. The reader will fmd the companion book "Optical
Properties of Crystalline and Amorphous Semiconductors: Materials
and Fundamental Principles" useful since it emphasizes the basic
material properties and fundamental prinCiples.
Optical Properties of Crystalline and Amorphous Semiconductors:
Materials and Fundamental Principles presents an introduction to
the fundamental optical properties of semiconductors. This book
presents tutorial articles in the categories of materials and
fundamental principles (Chapter 1), optical properties in the
reststrahlen region (Chapter 2), those in the interband transition
region (Chapters 3 and 4) and at or below the fundamental
absorption edge (Chapter 5). Optical Properties of Crystalline and
Amorphous Semiconductors: Materials and Fundamental Principles is
presented in a form which could serve to teach the underlying
concepts of semiconductor optical properties and their
implementation. This book is an invaluable resource for device
engineers, solid-state physicists, material scientists and students
specializing in the fields of semiconductor physics and device
engineering.
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