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7.5.2 worksheet - Digilent Learn site
7.5.2 worksheet - Digilent Learn site

(A) (B) - Electrical and Computer Engineering
(A) (B) - Electrical and Computer Engineering

circuits
circuits

FTZU6.2E
FTZU6.2E

Lecture 2 Review • Methods of Analysis —Nodal analysis —Mesh analysis
Lecture 2 Review • Methods of Analysis —Nodal analysis —Mesh analysis

Series Circuits File
Series Circuits File

Today`s PPT
Today`s PPT

In a series circuit
In a series circuit

... Current is the same in the series circuit In a series circuit, the total voltage equals the sum of the voltage across the batteries wired in series in the circuit. In a series circuit, the total resistance (in ohms) equals the sum of the resistance of each device using ...
22 Watt Audio Amplifier
22 Watt Audio Amplifier

File
File

FTZ5.6EFH
FTZ5.6EFH

Unit 8 Practice MC Solutions
Unit 8 Practice MC Solutions

... Date: ...
16.3 and 16.4
16.3 and 16.4

to view a sample lesson
to view a sample lesson

Expt5
Expt5

Document
Document

No Slide Title
No Slide Title

Digital Circuit I (EEI 101)
Digital Circuit I (EEI 101)

Intro to Electronics
Intro to Electronics

College of Micronesia-FSM
College of Micronesia-FSM

... 2. Be able to define and explain the functions of some of the most common components used in electronics. 3. Be able to identify some of the most common types of equipment used in the field of electronics. 4. Be able to describe the structure of the atom. 5. Be able to define and explain the followi ...
Chapter 20 Chapter 20 - Electricity Electricity
Chapter 20 Chapter 20 - Electricity Electricity

electric circuit
electric circuit

What are Complex Circuits?
What are Complex Circuits?

resonant circuits
resonant circuits

Jeopardy
Jeopardy

< 1 ... 278 279 280 281 282 283 284 285 286 ... 304 >

Integrated circuit



An integrated circuit or monolithic integrated circuit (also referred to as an IC, a chip, or a microchip) is a set of electronic circuits on one small plate (""chip"") of semiconductor material, normally silicon. This can be made much smaller than a discrete circuit made from independent electronic components. ICs can be made very compact, having up to several billion transistors and other electronic components in an area the size of a fingernail. The width of each conducting line in a circuit can be made smaller and smaller as the technology advances; in 2008 it dropped below 100 nanometers, and has now been reduced to tens of nanometers.ICs were made possible by experimental discoveries showing that semiconductor devices could perform the functions of vacuum tubes and by mid-20th-century technology advancements in semiconductor device fabrication. The integration of large numbers of tiny transistors into a small chip was an enormous improvement over the manual assembly of circuits using discrete electronic components. The integrated circuit's mass production capability, reliability and building-block approach to circuit design ensured the rapid adoption of standardized integrated circuits in place of designs using discrete transistors.ICs have two main advantages over discrete circuits: cost and performance. Cost is low because the chips, with all their components, are printed as a unit by photolithography rather than being constructed one transistor at a time. Furthermore, packaged ICs use much less material than discrete circuits. Performance is high because the IC's components switch quickly and consume little power (compared to their discrete counterparts) as a result of the small size and close proximity of the components. As of 2012, typical chip areas range from a few square millimeters to around 450 mm2, with up to 9 million transistors per mm2.Integrated circuits are used in virtually all electronic equipment today and have revolutionized the world of electronics. Computers, mobile phones, and other digital home appliances are now inextricable parts of the structure of modern societies, made possible by the low cost of integrated circuits.
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