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Physics I
Physics I

... This course is an introduction to classical physics, including force, motion, energy, and momentum. Additional topics in waves, light, optics, electric and magnetic fields and electrical circuits will be studied as time allows. The course will concentrate on conceptual understanding through short an ...
University Physics Volume 1
University Physics Volume 1

Carboxylic Acids: Properties and Synthesis
Carboxylic Acids: Properties and Synthesis

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Chapter 8: Ionic Compounds

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Glossary of terms used in photocatalysis and radiation catalysis

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Holt Modern Chemistry Workbook: intro - ch 5

EOCT Physical Science Study Guide August 2008
EOCT Physical Science Study Guide August 2008

... think about what you are asked to do. Listen carefully to all the directions. Budget your time. Be sure that you allocate an appropriate amount of time to work on each question on the test. Take a quick break if you begin to feel tired. To do this, put your pencil down, relax in your chair, and take ...
Hybrid superconductor junctions with diluted PtNi ferromagnetic interlayer Taras Golod
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... components with small monodomain ferromagnetic layers and this, in turn, requires development of specific nano-fabrication techniques. Pt1−x Nix alloy is used as the ferromagnet layer due to very good solubility of the two components which results in homogeneous diluted ferromagnet. Systematic analy ...
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Inner-shell ionization cross section of gold by elec

... Haque et al. [16], etc. have calculated inner ionization cross sections due to electron impact. Scofield [11] proposed a model to calculate the ionization cross sections over wide incident energies taking into account the relativistic effect in relativistic plane wave born approximation (PWBA) throu ...
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INTEGRATED OPTOELECTRONICS

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Multipolarization Dynamic Light Scattering of Nonspherical

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... • Life time of a muon is 2.2 ms. However, it becomes longer when it is accelerated and Lorentz boosted. Calculate analytically or numerically what percentage of muons does survive when it is accelerated from 0.3 GeV/c to 20 GeV/c assuming two cases of average energy gain. One is 1 MeV/m and the othe ...
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Backward-wave regime and negative refraction in chiral composites

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Effect of Negative Ions on Electrical Breakdown in a Nonuniform Air

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SO2 DETECTION USING PLASMON DAMPING By ELI KASA

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Ab Initio correlated all electron Dirac

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Chapter 21: Reflection and Refraction

... CO: Imagine a magic trick. A “magician” in front of your eyes breaks a glass vile with a hammer and places the broken glass pieces in a beaker full of oil that has nothing but oil in it. Then she says “abracadabra” and places her hand in the beaker and takes out an intact vile. Would you believe tha ...
< 1 2 3 4 5 6 7 8 9 10 ... 208 >

Photoelectric effect

The photoelectric effect is the observation that many metals emit electrons when light shines upon them. Electrons emitted in this manner can be called photoelectrons. The phenomenon is commonly studied in electronic physics, as well as in fields of chemistry, such as quantum chemistry or electrochemistry.According to classical electromagnetic theory, this effect can be attributed to the transfer of energy from the light to an electron in the metal. From this perspective, an alteration in either the amplitude or wavelength of light would induce changes in the rate of emission of electrons from the metal. Furthermore, according to this theory, a sufficiently dim light would be expected to show a lag time between the initial shining of its light and the subsequent emission of an electron. However, the experimental results did not correlate with either of the two predictions made by this theory.Instead, as it turns out, electrons are only dislodged by the photoelectric effect if light reaches or exceeds a threshold frequency, below which no electrons can be emitted from the metal regardless of the amplitude and temporal length of exposure of light. To make sense of the fact that light can eject electrons even if its intensity is low, Albert Einstein proposed that a beam of light is not a wave propagating through space, but rather a collection of discrete wave packets (photons), each with energy hf. This shed light on Max Planck's previous discovery of the Planck relation (E = hf) linking energy (E) and frequency (f) as arising from quantization of energy. The factor h is known as the Planck constant.In 1887, Heinrich Hertz discovered that electrodes illuminated with ultraviolet light create electric sparks more easily. In 1905 Albert Einstein published a paper that explained experimental data from the photoelectric effect as being the result of light energy being carried in discrete quantized packets. This discovery led to the quantum revolution. In 1914, Robert Millikan's experiment confirmed Einstein's law on photoelectric effect. Einstein was awarded the Nobel Prize in 1921 for ""his discovery of the law of the photoelectric effect"", and Millikan was awarded the Nobel Prize in 1923 for ""his work on the elementary charge of electricity and on the photoelectric effect"".The photoelectric effect requires photons with energies from a few electronvolts to over 1 MeV in elements with a high atomic number. Study of the photoelectric effect led to important steps in understanding the quantum nature of light and electrons and influenced the formation of the concept of wave–particle duality. Other phenomena where light affects the movement of electric charges include the photoconductive effect (also known as photoconductivity or photoresistivity), the photovoltaic effect, and the photoelectrochemical effect.
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