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TAMU CHEM 101 - Nomenclature
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( ©2011, bolonc_130819) 1 Nomenclature (The Naming of Chemical Compounds) Learning how to name chemical compounds may at first seem to be a little overwhelming; however, if you learn a few simple rules, then you will be able to follow a systematic method of naming the compounds. First, we need to look at the elements. Elements are the fundamental building blocks of chemistry. They are substances that cannot be broken down into two or more simpler substances by chemical or physical means. The elements are most commonly displayed in the periodic table. Each element can be represented in an abbreviated form as a chemical symbol. This chemical symbol is one or two letters which represent the given element. Some of the symbols used for chemical elements are obvious abbreviations of the chemical name (for example, hydrogen (H), helium (He), lithium (Li), etc.). Other symbols are not quite so obvious, for example Na is the symbol for sodium. These symbols, rather than being based on their English names, are derived from their Latin origins. They include the following elements: antimony (stibium, Sb), copper (cuprum, Cu), gold (aurum, Au), iron (ferrum, Fe), lead (plumbum, Pb), mercury (hydrargyrum, Hg), potassium (kalium, K), silver (argentum, Ag), sodium (natrum, Na), and tin (stannum, Sn). The symbol for the element tungsten is from the Greek word, wolfram, W. The symbols for the elements are not only simpler to use than the whole name, but are convenient because they are internationally accepted. The International Union of Pure and Applied Chemistry (IUPAC) is composed of scientists from all over the world. They agreed on which symbol would represent each element. That way chemicals could be recognized by their symbols even in countries where English was not used. The symbol is not the only way to identify an element. The other way to identify an element is by its atomic number (Z) which is the number of protons in the nucleus of each atom of an element. For example, carbon has six protons; likewise, a nucleus with exactly six protons would be carbon. The atomic number is shown above the chemical symbol in the cell for each element in the periodic table. Protons are positively charged particles. So for neutral atoms there must be an equal number of negatively charged particles called electrons. Ions form when the number of electrons is different from the number or protons. An excess of electrons results in negatively charged ions called anions. A lack of electrons results in positively charged ions called cations. Atoms are composed not only of protons and electrons, they also include neutrons. Neutrons, like protons, are found in the nucleus of the atom. (Note: Both of these particles are referred to as nucleons and are important in nuclear reactions.) The neutrons have no effect on the charge, hence their name implies their neutrality. While the number of neutrons has no effect on the chemical reactivity of an element, it does effect the mass of the element. The mass of an electron is insignificant compared to that of a proton and a neutron. So the mass number (A) is the number of protons plus the number of neutrons for an element. The name isotope is given to atoms with the same atomic number, but with different mass numbers. For example cabon has isotopes with 6 neutrons, 7 neutrons and 8 neutrons which are called carbon-12, carbon-13 and carbon-14, respectively. The weighted average of the masses of the isotopes are recorded beneath the elemental symbol in the periodic table.( ©2011, bolonc_130819) 2 Fig. 1. The Periodic Table. In the periodic table, the horizontal rows are called periods and the vertical columns are called groups or families. Some of the groups have been given special names. Group 1A elements (Li, Na, K, Rb, Cs & Fr) are called alkali metals. Group 2A elements (Be, Mg, Ca, Sr, Ba, & Ra) are called alkaline earth metals. Group 7A elements (F, Cl, Br, I, & At) are called halogens. Group 8A (He, Ne, Ar, Kr, Xe & Rn) are called the noble gases. The elements in the periodic table can be separated into three categories: nonmetals, metalloids, and metals. Nonmetals are poor conductors of heat and electricity. Metals are good conductors of heat and electricity. Metalloids then have properties inbetween metals and nonmetals. The nonmetals are hydrogen, helium, carbon, nitrogen, oxygen, fluorine, neon, phosphorus, sulfur, chlorine, argon, selenium, bromine, krypton, iodine, xenon and radon. The metalloids are boron, silicon, germanium, arsenic, antimony, tellurium, polonium, and astanine. All other elements are considered metals. The similarity in the chemical properties of the members of a given family is due to the fact that they have the same number of electrons in their outermost shell, or valence shell. For example, the noble gases are all odorless, colorless, monatomic gases, with little chemical reactivity. They are also nonflammable under standard conditions. This lack of reactivity is due to the fact that the noble gases have closed shells so they tend not to bond with other elements. Before you begin, it is important to understand valence electrons and closed shells. Valence numbers can be assigned to atoms and radicals. Radicals are groups of atoms that behave as a single atom (e.g., NH4+ and CN-). The valence number allows you to determine how the atom (or radical) will combine with other atoms (or radicals) to form compounds. As mentioned, the properties of the noble gases can be explained by modern theories of atomic structure. That is, the outer shell of valence electrons for noble gases is considered to be "full". But what is meant by “full”? Valence electrons are the outermost electrons of an atom and are normally the only electrons that participate in chemical bonding. (Note: For the main group elements only the outermost electrons are involved in chemical reactions. In transition metals, though, some inner-shell electrons also participate.) Atoms with full valence electron shells then are extremely stable and therefore do not tend to form chemical bonds. The number of valence electrons of an element is determined by its group (column) in the periodic table. With the exception of the transition metals, the number at the top of a column identifies how many valence electrons are present in a given element.( ©2011, bolonc_130819) 3 The number of


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