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good material to learn semiconductor basics

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sagarcoco

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learn semiconductor

Could anyone suggest me some good links or ebooks to learn the semicondcutor basics ,thanks :D
 

semiconductor basics books

Try this one

it will help a lot

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which is the good semiconductors



this topic is helpful
see it

take care
Salma:)
 

googd semiconductors

For basics,try boylstead and sedra smith books.. they r good for begginers..
 

semiconductor books + blog + links

Ben G streetman is a good book for this and so is bolystead
 

applied electronics g.k. mithal rapidshare links

i dont know if it exists here but try to search for "Microelectronic Devices" by Yang ,,,good for device physics
 

book on basics of semiconductors

If you look for a little bit more exapnded explanation, check "Integrated Circuits" by Millman
 

properties of semiconductor materials

Hello,
with reading all these material,download some spice tool & try to simulate samll circuits. It would surely helpful to learn electronics.
regards,
-Sri
 

semiconductors basics

Sze's book of semiconductor device physics is useful for you.
 

g.k.mithal rapidshare

try out GK mithal
 

sedra and smith microelectronics esnips

those are all great resources, also try technical articles on semiconductor websites
 

basics of semiconductor conduction

Semiconductors are very similar to insulators. The two categories of solids differ primarily in that insulators have larger band gaps — energies that electrons must acquire to be free to flow. In semiconductors at room temperature, just as in insulators, very few electrons gain enough thermal energy to leap the band gap, which is necessary for conduction. For this reason, pure semiconductors and insulators, in the absence of applied fields, have roughly similar electrical properties. The smaller bandgaps of semiconductors, however, allow for many other means besides temperature to control their electrical properties.

Semiconductors' intrinsic electrical properties are very often permanently modified by introducing impurities, in a process known as doping. Usually it is reasonable to approximate that each impurity atom adds one electron or one "hole" (a concept to be discussed later) that may flow freely. Upon the addition of a sufficiently large proportion of dopants, semiconductors conduct electricity nearly as well as metals. Depending on kind of the impurity, a region of semiconductor can have more electrons or holes, and then it is called N-type or P-type semiconductor, respectively. Junctions between regions of N- and P-type semiconductors have built-in electric fields, which cause electrons and holes to escape from them, and are critical to semiconductor device operation. Also, a density difference of impurities produces in the region small electric field which is used to accelerate non-equilibrium electrons or holes in it.

In addition to permanent modification through doping, the electrical properties of semiconductors are often dynamically modified by applying electric fields. The ability to control conductivity in small and well-defined regions of semiconductor material, both statically through doping and dynamically through the application of electric fields, has led to the development of a broad range of semiconductor devices, like transistors. Semiconductor devices with dynamically controlled conductivity are the building blocks of integrated circuits, like the microprocessor. These "active" semiconductor devices are combined with simpler passive components, such as semiconductor capacitors and resistors, to produce a variety of electronic devices.

In certain semiconductors, when electrons fall from the conduction band to the valence band (the energy levels above and below the band gap), they often emit light. This photoemission process underlies the light-emitting diode (LED) and the semiconductor laser, both of which are very important commercially. Conversely, semiconductor absorption of light in photodetectors excites electrons from the valence band to the conduction band, facilitating reception of fiber optic communications, and providing the basis for energy from solar cells.

Semiconductors may be elemental materials such as silicon and germanium, or compound semiconductors such as gallium arsenide and indium phosphide, or alloys such as silicon germanium or aluminium gallium arsenide.
 

learn semiconductor topic

read Streetman
 

learm semiconductors

streetman book


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or

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Has anyone tried atryna.blogspot.com .
Whoever is the blog owner(s) have done a great job of collecting links to books and software.
Check out even Hspice 2007 is available.!!!
 

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