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a wave's height from the origin to the crest |
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light emitted by an element and passed through a prism |
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regions in which electrons are likely to be found |
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electrons enter orbitals of lower energy 1st |
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electromagnetic radiation |
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includes radio waves, microwaves, infrared waves, visible light, ultraviolet waves, x-rays, and gamma rays |
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ways in which electrons are arranged around the nuclei of an atom |
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region around the nucleus where the electron is likely to be moving |
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number of wave cycles that pass a given point per unit of time |
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lowest energy level occupied by an electron |
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SI unit of frequency (cycles/second) |
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when electrons occupy orbitals of equal energy, one electron enters each orbital until all the orbitals contain one electron with parallel spins |
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Pauli exclusion principle |
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an atomic orbital may describe at most two electrons |
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metals eject electrons called photoelectrons when light shines on them |
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the amount of energy required to move an electron from its present energy level to the next higher one |
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range of wavelengths of electromagnetic radiation |
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distance between wave crests |
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the modern description of electrons in atoms |
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behavior of electons in same energy level |
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behavior of electrons in different energy levels |
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number says in what energy level the valence electrons are |
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in pairs in opposite direction |
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electrons in orbitals travel... |
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electrons in 3d have higher energy than 4s; 4s fills first, usually |
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3s (1p), 3p (3o), 3d (5o); 18e |
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4s (1o), 4p (3o), 4d (5o), 4f (7o); 32e |
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1s2,2s2,2p6,3s2,3p6,3d5,4s1 |
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Cr electron configuration |
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1s2,2s2,2p6,3s2,3p6,3d10,4s1 |
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Cu electron configuration |
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electromagnetic radiation accounted for by... |
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across period: decreases down group: increases |
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across period: increases down group: decreases |
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ionization energy (p. t.) |
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energy required to overcome the attraction of the nuclear charge and remove an electron from a gaseous atom |
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across period: increases down group: decreases |
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electronegativity (p. t.) |
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1/2 distance between the nuclei of two like atoms in a diatomic molecule |
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tendency for the atoms of the element to attract electrons when they are chemically combined with atoms of another element |
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elements in which the outermost sublevel is filled |
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the outermost s or p sublevel is only partially filled |
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outermost s sublevel and a nearby d sublevel contain electrons |
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it must have a full 4d first! |
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if an atom has a full third energy level... |
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