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Wednesday, February 27, 2013

Emitter

Detailed table of contents:

Introduction…………………………………………………..1
The Common Emitter Amplifier go………………….. 3
Numerical Example…………………………………………..4
Coupling Capacitors…………………………………………..5
Output Characteristics Curves …………………………………6
Voltage pull together…………………………………………………..8
Summary…………………………………………………...9

Introduction

The invention of the bipolar transistor in 1948 ushered in a revolution in electronics. Technical feats previously requiring relatively large, mechanically fragile, power-hungry vacuum tubes were suddenly achievable with tiny, mechanically rugged, power-thrifty specks of diaphanous silicon. This revolution made come-at-able the design and manufacture of lightweight, tawdry electronic devices that we now take for granted. Understanding how transistors function is of predominate importance to anyone interested in understanding modern electronics.
My cloaked here is to focus as exclusively as possible on the practical function and application of bipolar transistors, sooner than to search the quantum world of semiconductor theory. Discussions of holes and electrons are better left hand to another chapter in my opinion.

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Here I want to explore how to use these components, not analyze their intimate internal details. I dont mean to downplay the importance of understanding semiconductor physics, nevertheless sometimes an intense focus on solid-state physics detracts from understanding these devices functions on a component level. In winning this approach, however, I assume that the reader possesses a certain marginal knowledge of semiconductors: the difference between P and N doped semiconductors, the functional characteristics of a PN (diode) junction, and the meanings of the terms reverse biased and fore biased. If these concepts are unclear to you, it is best to refer to earlier chapters in this book before proceeding with this one.
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