Uploaded January 2013 | Updated September 2026, 1 week ago
A solar cell (also called a photovoltaic cell) is an electrical device that converts the energy of light directly into electricity by the photovoltaic effect. It is a form of photoelectric cell (in that its electrical characteristics—e.g. current, voltage, or resistance—vary when light is incident upon it) which, when exposed to light, can generate and support an electric current without being attached to any external voltage source.
The term "photovoltaic" comes from the Greek φῶς (phōs) meaning "light", and from "Volt", the unit of electro-motive force, the volt, which in turn comes from the last name of the Italian physicist Alessandro Volta, inventor of the battery (electrochemical cell). The term "photo-voltaic" has been in use in English since 1849
Photovoltaics is the field of technology and research related to the practical application of photovoltaic cells in producing electricity from light, though it is often used specifically to refer to the generation of electricity from sunlight. Cells can be described as photovoltaic even when the light source is not necessarily sunlight (lamplight, artificial light, etc.). In such cases the cell is sometimes used as a photodetector (for example infrared detectors), detecting light or other electromagnetic radiation near the visible range, or measuring light intensity.
The operation of a photovoltaic (PV) cell requires 3 basic attributes:
The absorption of light, generating either electron-hole pairs or excitons.
The separation of charge carriers of opposite types.
The separate extraction of those carriers to an external circuit.
In contrast, a solar thermal collector collects heat by absorbing sunlight, for the purpose of either direct heating or indirect electrical power generation. "Photoelectrolytic cell" (photoelectrochemical cell), on the other hand, refers either a type of photovoltaic cell (like that developed by A.E. Becquerel and modern dye-sensitized solar cells) or a device that splits water directly into hydrogen and oxygen using only solar illumination.
History of solar cells
The hope for a "solar revolution" has been floating around for decades -- the idea that one day we'll all use free electricity from the sun. This is a seductive promise, because on a bright, sunny day, the sun's rays give off approximately 1,000 watts of energy per square meter of the planet's surface. If we could collect all of that energy, we could easily power our homes and offices for free.
In this article, we will examine solar cells to learn how they convert the sun's energy directly into electricity. In the process, you will learn why we're getting closer to using the sun's energy on a daily basis, and why we still have more research to do before the process becomes cost-effective.You've probably seen calculators with solar cells -- devices that never need batteries and in some cases, don't even have an off button. As long as there's enough light, they seem to work forever. You may also have seen larger solar panels, perhaps on emergency road signs, call boxes, buoys and even in parking lots to power the lights.
Although these larger panels aren't as common as solar-powered calculators, they're out there and not that hard to spot if you know where to look. In fact, photovoltaics -- which were once used almost exclusively in space, powering satellites' electrical systems as far back as 1958 -- are being used more and more in less exotic ways. The technology continues to pop up in new devices all the time, from sunglasses to electric vehicle charging stations.
The hope for a "solar revolution" has been floating around for decades -- the idea that one day we'll all use free electricity from the sun. This is a seductive promise, because on a bright, sunny day, the sun's rays give off approximately 1,000 watts of energy per square meter of the planet's surface. If we could collect all of that energy, we could easily power our homes and offices for free.
In this article, we will examine solar cells to learn how they convert the sun's energy directly into electricity. In the process, you will learn why we're getting closer to using the sun's energy on a daily basis, and why we still have more research to do before the process becomes cost-effective.
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Please watch: "Lifi Communication by Arduino UNO Download Project"
youtube.com/watch?v=c4gC8dbaiZg
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A solar cell (also called a photovoltaic cell) is an electrical device that converts the energy of light directly into electricity by the photovoltaic effect. It is a form of photoelectric cell (in that its electrical characteristics—e.g. current, voltage, or resistance—vary when light is incident upon it) which, when exposed to light, can generate and support an electric current without being attached to any external voltage source.
The term "photovoltaic" comes from the Greek φῶς (phōs) meaning "light", and from "Volt", the unit of electro-motive force, the volt, which in turn comes from the last name of the Italian physicist Alessandro Volta, inventor of the battery (electrochemical cell). The term "photo-voltaic" has been in use in English since 1849
Photovoltaics is the field of technology and research related to the practical application of photovoltaic cells in producing electricity from light, though it is often used specifically to refer to the generation of electricity from sunlight. Cells can be described as photovoltaic even when the light source is not necessarily sunlight (lamplight, artificial light, etc.). In such cases the cell is sometimes used as a photodetector (for example infrared detectors), detecting light or other electromagnetic radiation near the visible range, or measuring light intensity.
The operation of a photovoltaic (PV) cell requires 3 basic attributes:
The absorption of light, generating either electron-hole pairs or excitons.
The separation of charge carriers of opposite types.
The separate extraction of those carriers to an external circuit.
In contrast, a solar thermal collector collects heat by absorbing sunlight, for the purpose of either direct heating or indirect electrical power generation. "Photoelectrolytic cell" (photoelectrochemical cell), on the other hand, refers either a type of photovoltaic cell (like that developed by A.E. Becquerel and modern dye-sensitized solar cells) or a device that splits water directly into hydrogen and oxygen using only solar illumination.
History of solar cells
The hope for a "solar revolution" has been floating around for decades -- the idea that one day we'll all use free electricity from the sun. This is a seductive promise, because on a bright, sunny day, the sun's rays give off approximately 1,000 watts of energy per square meter of the planet's surface. If we could collect all of that energy, we could easily power our homes and offices for free.
In this article, we will examine solar cells to learn how they convert the sun's energy directly into electricity. In the process, you will learn why we're getting closer to using the sun's energy on a daily basis, and why we still have more research to do before the process becomes cost-effective.You've probably seen calculators with solar cells -- devices that never need batteries and in some cases, don't even have an off button. As long as there's enough light, they seem to work forever. You may also have seen larger solar panels, perhaps on emergency road signs, call boxes, buoys and even in parking lots to power the lights.
Although these larger panels aren't as common as solar-powered calculators, they're out there and not that hard to spot if you know where to look. In fact, photovoltaics -- which were once used almost exclusively in space, powering satellites' electrical systems as far back as 1958 -- are being used more and more in less exotic ways. The technology continues to pop up in new devices all the time, from sunglasses to electric vehicle charging stations.
The hope for a "solar revolution" has been floating around for decades -- the idea that one day we'll all use free electricity from the sun. This is a seductive promise, because on a bright, sunny day, the sun's rays give off approximately 1,000 watts of energy per square meter of the planet's surface. If we could collect all of that energy, we could easily power our homes and offices for free.
In this article, we will examine solar cells to learn how they convert the sun's energy directly into electricity. In the process, you will learn why we're getting closer to using the sun's energy on a daily basis, and why we still have more research to do before the process becomes cost-effective.
-~-~~-~~~-~~-~-
Please watch: "Lifi Communication by Arduino UNO Download Project"
youtube.com/watch?v=c4gC8dbaiZg
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![TISHITU -2 Microsoft Surface Calibration and application work on table for Restaurant Management
Microsoft Surface History
The earliest ideas that led to Surface originated at Microsoft back in 2001. At that time, researchers envisioned an interactive table that could sense the presence and movement of any objects on its surface. Microsoft founder Bill Gates encouraged the project in early 2003. After 85 prototypes, the project team came up with a design that would eventually become Surface 1.0.
Microsoft first demonstrated Surface at the 2007 All Things Digital (D) conference in Carlsbad, California. During that D conference, known as D5, Surface was far from the first platform making use of touch-screens. Tablet PCs, for example, could already detect a finger or stylus writing directly to the screen. Microsofts vision, though, has been to expand on that touch-screen approach to change the way people interact across the table from each other. The Surface device demonstrated at D5 was a black tabletop with a 30-inch (76.2-centimeter) touch-screen mounted beneath its clear acrylic surface [sources: Mintz, Fost, Microsoft, All Things Digital].
Microsofts first commercial deployment for Surface came nearly a year after this debut. In April 2008, select AT&T retail stores in the U.S. began using Surface computers as a sales tool for showcasing information about its mobile devices. Other corporate partners were in the works throughout 2008, primarily those who could enhance their businesses by using Surface devices and, in turn, show off the wondrous things that Surface could do. At an estimated price of more than $12,000, Microsoft was not targeting the average home consumer during its first Surface release [sources: Microsoft, Microsoft, Foley].
During the Consumer Electronics Show (CES) in early January 2011, Microsoft launched its marketing campaign for Surface 2.0. It also promoted its partnership with Samsung to produce the SUR40: a 4-inch (10.2-centimeter) thick tabletop computer with a 40-inch (1-meter) display running the Surface 2.0 platform. Scheduled to hit the market later in 2011, Microsoft reported that the SUR40 would cost about $7,600 in the United States. The price point, combined with the available software for Surface 2.0, seemed to indicate that Microsoft was still targeting the business owner rather than the home consumer [source: Foley].
Thats the brief history of Surface, though there will likely be many more chapters to come for this innovative new tool. Now, lets look under the hood and see what makes Surface more than just a big touch-screen display.
The Surface has implemented its NUI with a combination of hardware and software all packed inside a single device. The Surface 1.0 hardware features a series of cameras that sense a users touch or other objects placed on the tabletop. The Surface software processes the data from those cameras and then responds as appropriate for the application youre currently using. Surface shows the resulting interaction on its display, which is actually a projection of the screen from underneath the tabletop [source: Microsoft].
As part of its NUI, Surface also includes multi-touch technology. This means that Surface can detect and process several touch points simultaneously. Therefore, if you have several people browsing through pictures at one time, they can each drag, zoom and turn photos at the same time without waiting for each other. Multi-touch technology has been in existence for decades, and Apple made it famous by using it in its iPhone and iPod Touch devices. Surface computing brings that technology into a large, collaborative environment that can fully realize the multi-touch potential [source: Buxton].
40-inch (1-meter) LCD screen
4-inch (10.2-centimeter) unit depth/thickness for easier horizontal mounting
2.9 GHz 64-bit AMD Athlon X2 dual core processor
1 GB AMD Radeon HD graphics processor
4 GB DDR3 RAM
320 GB hard drive
Wired (1 GB Ethernet) and wireless (802.11 and Bluetooth) network hardware
Physical connectors include HDMI, stereo RCA, USB and SD card
Embedded 64-bit Windows 7 Professional operating system
Corning Gorilla Glass to protect the surface
Recognition for more than 50 simultaneous touch points
Weve just looked at the Surface hardware and how Microsoft is leading the way for surface computing. As Microsoft is primarily a software company, you might expect that the software part of the Surface platform is also quite innovative. Lets take a look at that on the next page.
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Please watch: Lifi Communication by Arduino UNO Download Project
https://www.youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~- TISHITU -2 Microsoft Surface Calibration and application work on table for Restaurant Management](https://i.ytimg.com/vi/b3B70WXQUoU/mqdefault.jpg)
![TISHITU Magic tricks of playing cards by my friend Josselin Beaulieu at- India Rajasthan Jaipur
Tishitu explains
The term magic is etymologically derived from the Greek word mageia (μαγεία). Greeks and Persians had been at war for centuries and the Persian priests, called magosh in Persian, came to be known as magoi in Greek; that which a Persian priest did come to be known as mageia and then magika, a term which eventually referred to any foreign, unorthodox or illegitimate ritual practice.
Performances we would now recognize as conjuring have probably been practiced throughout history.[3] The same level of ingenuity that was used to produce famous ancient deceptions such as the Trojan Horse would also have been used for entertainment, or at least for cheating in money games, since time immemorial.
As a magician I promise never to reveal the secret of any illusion to a non-magician, unless that one swears to uphold the Magicians Oath in turn. I promise never to perform any illusion for any non-magician without first practicing the effect until I can perform it well enough to maintain the illusion of magic.
Once sworn to the Oath, one is considered a magician, and is expected to live up to this promise. Magicians who reveal secrets, either purposely or through insufficient practice, may find that other magicians are unwilling to teach them any more secrets. They will then no longer be eligible to join IBM (International Brotherhood of Magicians) and will be banned from magic society.
However, it is considered permissible to reveal secrets to individuals who are determined to learn magic and become magicians. It is typically a sequential process of increasingly valuable and lesser known secrets. The secrets of almost all magical effects are available to the public through numerous books and magazines devoted to magic, available from the specialized magic trade. There are also web sites which offer videos, DVDs and instructional materials. In this sense, there are very few classical illusions left unrevealed, but this does not appear to have diminished the appeal of performances. In addition, magic is a living art, and new illusions are devised with surprising regularity. Sometimes a new illusion will be built on an illusion that is old enough to have become unfamiliar.
Some magicians have taken the position that revealing the methods used in certain works of magic can enhance the appreciation of the audience for cleverness of magic. Penn and Teller frequently perform tricks using transparent props to reveal how they are done, for example, although they almost always include additional unexplained effects at the end that are made even more astonishing by the revealing props being used.
Often, what seems to be a revelation of a magical secret is merely another form of misdirection. For instance, a magician may explain to an audience member that the linking rings have a hole in them and hand the volunteer two unlinked rings, which the volunteer finds to have become linked as soon as he handles them. At this point the magician may shove his arm through the ring (the hole in the ring), proclaiming: See? Once you know that every ring has a hole, its easy!
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Please watch: Lifi Communication by Arduino UNO Download Project
https://www.youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~- TISHITU Magic tricks of playing cards by my friend Josselin Beaulieu at- India Rajasthan Jaipur](https://i.ytimg.com/vi/b6YSANVG9BU/mqdefault.jpg)


![How to Use Signal Generator and Oscilloscope in Proteus
An oscilloscope, previously called an oscillograph[1][2], and informally known as a scope, CRO (for cathode-ray oscilloscope), or DSO (for the more modern digital storage oscilloscope), is a type of electronic test instrument that allows observation of constantly varying signal voltages, usually as a two-dimensional graph of one or more electrical potential differences using the vertical or Y axis, plotted as a function of time (horizontal or x axis). Many signals, for example sound, can be converted to voltages and displayed this way. Signals are often periodic and repeat constantly, so that multiple samples of a signal which is actually varying with time are displayed as a steady picture. Many oscilloscopes (storage oscilloscopes) can also capture non-repeating waveforms for a specified time, and show a steady display of the captured segment.
Oscilloscopes are commonly used to observe the exact wave shape of an electrical signal. Oscilloscopes are usually calibrated so that voltage and time can be read as well as is possible by eye. This allows the measurement of, for example, peak-to-peak voltage of a waveform, the frequency of periodic signals, the time between pulses, the time taken for a signal to rise to full amplitude (rise time), and relative timing of several related signals.[3]
Oscilloscopes are used in the sciences, medicine, engineering, and telecommunications industry. General-purpose instruments are used for maintenance of electronic equipment and laboratory work. Special-purpose oscilloscopes may be used for such purposes as analyzing an automotive ignition system, or to display the waveform of the heartbeat as an electrocardiogram. Some computer sound software allows the sound being listened to be displayed on the screen as by an oscilloscope.
Before the advent of digital electronics oscilloscopes used cathode ray tubes as their display element (hence were commonly referred to as CROs) and linear amplifiers for signal processing. More advanced storage oscilloscopes used special storage CRTs to maintain a steady display of a single brief signal. CROs were later largely superseded by digital storage oscilloscopes (DSOs) with thin panel displays, fast analog-to-digital converters and digital signal processors. DSOs without integrated displays (sometimes known as digitisers) are available at lower cost, and use a general-purpose digital computer to process and display waveforms.
ignal generators, also known variously as function generators, RF and microwave signal generators, pitch generators, arbitrary waveform generators, digital pattern generators or frequency generators are electronic devices that generate repeating or non-repeating electronic signals (in either the analog or digital domains). They are generally used in designing, testing, troubleshooting, and repairing electronic or electroacoustic devices; though they often have artistic uses as well.
There are many different types of signal generators, with different purposes and applications (and at varying levels of expense); in general, no device is suitable for all possible applications.
Traditionally, signal generators have been embedded hardware units, but since the age of multimedia-PCs, flexible, programmable software tone generators have also been available
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Please watch: Lifi Communication by Arduino UNO Download Project
https://www.youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~- How to Use Signal Generator and Oscilloscope in Proteus](https://i.ytimg.com/vi/c-j3-WPcV9A/mqdefault.jpg)



