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Lecture 18 (Slides) October 4
Lecture 18 (Slides) October 4

... move. In this course the motion of electrons will be most important. When removed from an atom electrons can be focused and accelerated to high velocities using an electric field. Inside an atom, electrons move rapidly around the nucleus (electrons have orbital angular momentum!) and can also “spin” ...
EM Waves history & Polarization APIB
EM Waves history & Polarization APIB

PHYS1111
PHYS1111

... In the figure to the left, a hanging mass (m) pulls on a disk with a Radius R and moment of inertia I starting from rest. This should look familiar to lab. m, R and acceleration are all measured (knowns). Here the string is wrapped around the outside of the disk at radius R. Write out the equations ...
22-2 Electromagnetic Waves and the Electromagnetic
22-2 Electromagnetic Waves and the Electromagnetic

AP C Syllabus
AP C Syllabus

... Laboratory Investigations: 1. Electrostatics Observations- fur, silk, rods, and pithballs 2. Coulomb’s Law-pith balls and the inverse square relationship 3. Electric Field Mapping-Determining field from the potential 4. Ohm’s Law-linear behavior of a resistor 5. Series and Parallel Circuits-behavio ...
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DES601-Module011

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rigid-body motion

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Electromagnetic Waves

... • Explain and discuss with appropriate diagrams the general properties of all electromagnetic waves. • Discuss and apply the mathematical relationship between the electric E and magnetic B components of an EM wave. • Define and apply the concepts of energy density, intensity, and pressure due to EM ...
Theoretical Problem 3
Theoretical Problem 3

... value at room temperature is about two orders of magnitude lower than its classical counterpart. This is because the electrons obey the quantum statistics rather than classical statistics. According to the quantum theory, for a metallic material the density of states of conduction electrons (the num ...
catch-up and review
catch-up and review

... energy given by E=hf, where h is Planck’s constant l  Energy of light is not distributed evenly over classical wavefront, but instead is concentrated in bundles or energy called photons l  You should know the connection between the energy of a photon and its frequency (and its wavelength) ...
Lecture 14 Rotational Motion - G.
Lecture 14 Rotational Motion - G.

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Chapter 9 Quantum Mechanics

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PPT - LSU Physics & Astronomy

... EM Spherical Waves The intensity of a wave is power per unit area. If one has a source that emits isotropically (equally in all directions) the power emitted by the source pierces a larger and larger sphere as the wave travels outwards: 1/r2 Law! ...
8.1: Linear Momentum and Force By: Chris, Jakub, Luis
8.1: Linear Momentum and Force By: Chris, Jakub, Luis

... Two objects of different mass are moving at the same speed; the more massive object will have the greatest momentum. For the momentums to be equal, the product of the velocities and masses of the 2 objects must be equal ...
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Chris, Jakub, Luis PDF

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1. dia

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unit 28: electromagnetic waves and polarization

... You use two retardation plates in this lab: a quarter-wave plate and a half-wave plate. Both plates are made of a clear plastic film whose index of refraction depends on the polarization direction of the light passing through it. The material has two perpendicular axes called the fast axis and the s ...
Lecture 06: Conservation of Angular Momentum
Lecture 06: Conservation of Angular Momentum

... A puck of mass m = 0.5 kg is attached to a taut cord passing through a small hole in a frictionless, horizontal surface. The puck is initially orbiting with speed vi = 2 m/s in a circle of radius ri = 0.2 m. The cord is then slowly pulled from below, decreasing the radius of the circle to r = 0.1 m. ...
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STUDY GUIDE FOR CHAPTER 1

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EE3321 ELECTROMAGNETIC FIELD THEORY

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Sect. 2.5 - TTU Physics

Mechanical Waves (Chapter 17) 1. What does a wave transfer
Mechanical Waves (Chapter 17) 1. What does a wave transfer

... 9. What is the reflection of sound waves off of a hard surface can create a what? Echo 10. What kind of medium do waves travel through the fastest? Solids (the particles are closest together) The Electromagnetic Spectrum (Chapter 18) 1. What is the electromagnetic spectrum? The range of frequencies ...
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Photon polarization

Photon polarization is the quantum mechanical description of the classical polarized sinusoidal plane electromagnetic wave. Individual photon eigenstates have either right or left circular polarization. A photon that is in a superposition of eigenstates can have linear, circular, or elliptical polarization.The description of photon polarization contains many of the physical concepts and much of the mathematical machinery of more involved quantum descriptions, such as the quantum mechanics of an electron in a potential well, and forms a fundamental basis for an understanding of more complicated quantum phenomena. Much of the mathematical machinery of quantum mechanics, such as state vectors, probability amplitudes, unitary operators, and Hermitian operators, emerge naturally from the classical Maxwell's equations in the description. The quantum polarization state vector for the photon, for instance, is identical with the Jones vector, usually used to describe the polarization of a classical wave. Unitary operators emerge from the classical requirement of the conservation of energy of a classical wave propagating through media that alter the polarization state of the wave. Hermitian operators then follow for infinitesimal transformations of a classical polarization state.Many of the implications of the mathematical machinery are easily verified experimentally. In fact, many of the experiments can be performed with two pairs (or one broken pair) of polaroid sunglasses.The connection with quantum mechanics is made through the identification of a minimum packet size, called a photon, for energy in the electromagnetic field. The identification is based on the theories of Planck and the interpretation of those theories by Einstein. The correspondence principle then allows the identification of momentum and angular momentum (called spin), as well as energy, with the photon.
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