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Introduction to SAT II Physics - FreeExamPapers

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electrons. The electromagnetic force pulls the electrons in<strong>to</strong> orbit around the nucleus in<br />

just the way that the gravitational force pulls planets in<strong>to</strong> orbit around the sun.<br />

The radius of an a<strong>to</strong>m’s nucleus is about 1⁄10,000 the radius of the a<strong>to</strong>m itself. As a result,<br />

most of the alpha particles in Rutherford’s gold foil experiment passed right through<br />

the sheet of gold foil without making contact with anything. A small number, however,<br />

bumped in<strong>to</strong> the nucleus of one of the gold a<strong>to</strong>ms and bounced right back.<br />

Quantum <strong>Physics</strong><br />

As physicists began <strong>to</strong> probe the mysteries of the a<strong>to</strong>m, they came across a number of<br />

unexpected results along the lines of Rutherford’s gold foil experiment. Increasingly, it<br />

became clear that things at the a<strong>to</strong>mic level are <strong>to</strong>tally unlike anything we find on the<br />

level of everyday objects. Physicists had <strong>to</strong> develop a whole new set of mechanical<br />

equations, called “quantum mechanics,” <strong>to</strong> explain the movement of elementary particles.<br />

The physics of this “quantum” world demands that we upset many basic assumptions—<br />

that light travels in waves, that observation has no effect on experiments, etc.—but the<br />

results, from transis<strong>to</strong>r radios <strong>to</strong> microchips, are undeniable. Quantum physics is strange,<br />

but it works.<br />

Electronvolts<br />

Before we dive in<strong>to</strong> quantum physics, we should define the unit of energy we’ll be using in<br />

our discussion. Because the amounts of energy involved at the a<strong>to</strong>mic level are so small,<br />

it’s problematic <strong>to</strong> talk in terms of joules. Instead, we use the electronvolt (eV), where 1<br />

eV is the amount of energy involved in accelerating an electron through a potential<br />

difference of one volt. Mathematically,<br />

The Pho<strong>to</strong>electric Effect<br />

Electromagnetic radiation transmits energy, so when visible light, ultraviolet light, X<br />

rays, or any other form of electromagnetic radiation shines on a piece of metal, the<br />

surface of that metal absorbs some of the radiated energy. Some of the electrons in the<br />

a<strong>to</strong>ms at the surface of the metal may absorb enough energy <strong>to</strong> liberate them from their<br />

orbits, and they will fly off. These electrons are called pho<strong>to</strong>electrons, and this<br />

phenomenon, first noticed in 1887, is called the pho<strong>to</strong>electric effect.<br />

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