Term
|
Definition
according to the octet rule atoms bond in order to become isoelectronic with a noble gas (usually 8 valence electrons) |
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Term
what is it meant when we say that an atom or ion is isoelectronic with a noble gas? |
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Definition
an atom or ion is isoelectronic with a noble gas when it has the same number of electrons as a noble gas. all noble gases have 8 electrons in their outer energy level, except helium, which is full with 2 electrons. |
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Term
in solid ionic compounds the ions are arranged in a rigid lattice. describe this lattice. |
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Definition
the rigid lattice in ionic solid is made up of oppositely charged ions packed tightly together, so that each negative ion is surrounded by positive ions and each positive ion is surrounded by negative ions. |
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Term
why do ionic compounds have high melting points? |
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Definition
ionic compounds have high melting point because the ionic bonds holding the ions together in the lattice are very strong and a lot of energy (high temperature) is needed to break the lattice structure and allow the ions to move freely in the liquid state. |
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Term
what happens to the lattice when an ionic compound is dissolved in water or melted? |
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Definition
when an ionic compound is dissolved in water or melted the lattice structure breaks and the ions are free to move. |
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Term
why are ionic compounds good conductors of electricity only when they are dissolved in water or in their liquid state? |
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Definition
ionic compounds conduct when dissolved or melted because the ions are free to move and are therefore available to carry the electrical current. |
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Term
explain why pure covalent compounds have a low melting point and low conductivity. |
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Definition
the intermolecular forces are very weak and doesn't take a lot of energy to seperate the molecules. |
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Term
what are the 7 diatomic elements? |
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Definition
Iodine, hydrogen, nitrogen, bromine, oxygen, chlorine and fluorine
i have no bright or clever friends |
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Term
what is a pure covalen bond? |
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Definition
in a pure covalent bond, two atoms with identical (same element) are nearly identical. electronegativies share electrons. electronegativity difference of less than 0.5 indicates a pure covalent bond. |
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Term
how many electrons are shared in a double bond and triple bond? |
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Definition
four electrons are shared in a double bond and six electrons are shared in triple bond. |
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Term
what is a polar covalent bond? |
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Definition
a polar covalent bond is a bond in which the electron pair is unequally shared between atoms that have electronic negativity difference between .5 and 1.7 |
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Term
describe how electrons can be shared unequally in a polar covalent bond. |
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Definition
electrons can be shared unequally in a polar covalent bond because the shared pair of electrons will spend more time near the atom with the higher electronicc negativity. making that end of the molecule , slightly negative. |
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Term
what shape allows the electron pairs in a molecule to be the maximum distance from each other? |
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Definition
a pyramid with four equal faces (called a tetrahedron) allows the electron pairs in a molecule to be the maximum distance from each other. |
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Term
what two factors determine whether a molecule to be polar? give an example of a polar molecule. |
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Definition
to be polar a molecule must have polar bonds and be asymmetrical.
water h2o ,
ammonia NH3
and hydrogen chloride HCl are all polar molecules. |
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Term
Express flourine as an ion |
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Definition
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|
Term
Express calcium as an ion |
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Definition
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Term
How do you determine whether or not an element has small or large radius. |
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Definition
The atomic size decreases going across a period. the atomic raidius increases from the top to the bottom of a group.
If it is an ion with a positive charge then it will be bigger compared to the pure element. if it is an ion with a negative charge then it will be smaller, becase it would have gained electrons.
therefore less valence electrons the bigger the radius. |
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Term
write the ionic formula for compounds formed between the following ions
- Na+ O2-
- Al3+Br-
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|
Definition
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|
Term
write names for the following ionic compounds
- MgCl2
- K3P
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|
Definition
- magnesium chloride
- Potassium phosphide
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Term
what are the polyatomic ions? |
|
Definition
- (ClO3)- Chlorate ion
- (NO3)- nitrate ion
- (CO3)2- carbonate ion
- (PO4)3- Phosphate ion
- (SO4)2- Sulfate ion
- (NH4)+ Ammonium Ion
- (OH)- hydroxide ion
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Term
|
Definition
an atom or group of atoms having an electrical charge because of a loss or gain of electrons. |
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Term
|
Definition
compounds are the result of the formation of chemical bonds between 2 or more different elements |
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Term
when do ionic bonds occur? |
|
Definition
ionic bonds occur when atoms of one element lose valence elections and the atoms of another element gain valence electrons. |
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Term
when do ionic compounds occur? |
|
Definition
Ionic compounds occur between metals and non metals.
However, atoms of nonmetals share valence electrons and form covalent compounds. |
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Term
what happens in the formation of ionic bonds or covalent bonds. |
|
Definition
atoms lose, gain, or share valence electrons to acquire an octet. |
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Term
talk about naming and writing ionic formulas |
|
Definition
in naming ionic compounds, the name of the positive ion is given first, followed by the name of the negative ion. ionic compounds containing two elements end with ide. except for Ag, Cd, Zn, transition metals form cations with 2 or more ionic charges. Then the charges of the cation is determined from the total negative charge in the formula and included as a Roman numeral following the name. |
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Term
how would you write the name of compound containing a polyatomic ion. |
|
Definition
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|
Term
talk about covalent compounds |
|
Definition
-
covalent bond - electrons are shared by atoms of 2 nonmetals (octet)
-
nonpolar covalent bond - electrons are shared equally
-
polar covalent bonds, electrons are unequally shared due to thier attraction to the more electronegative atom.
-
some covalent compounds double or triple bnds are needed to provide an octet.
-
the ending of the second nonmetal is changed to ide.
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Term
how do you use electronegativiy to determine the polarity of a bond? |
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Definition
- EN is the ability of an atom to attract shared pairs of e-. The EN values of the metals are low, while nonmetals have high EN.
- in polar covalent bonds, the atom w the lower EN is partially positive adn the atom with the higher EN is partially negative.
- atoms that form ionic bonds have large differences in EN
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Term
Describe the attractive forces between ions, polar molecules and nonpolar molecules. |
|
Definition
- Ionic bonds consist of very strong attractivce forces between oppositely charged ions.
- attractive forces in polar covalent bonds are weaker than ionic bondsand include dipole-dipole attractions and hydrogen bonds.
- nonpolar covalent compounds form solids using temporary dipoles called dispersion forces.
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Term
|
Definition
the seperation of positive an negaive charges in a polar bond indicated by an arrow that is drawn from the more positive atom to the more negative atom. |
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Term
define dipole-dipole attractions |
|
Definition
attractive forces between opposiely charged ends of polar molecules
a polar covalent bond that has a separation of charges is called a dipole |
|
|
Term
|
Definition
weak dipole bonding that results from a momentary polarization of nonpolar molecules in a substance |
|
|
Term
|
Definition
the relative ability of an element to attract electrons in a bond |
|
|
Term
|
Definition
the attraction between a partially positive H atom and a strongly electronegative atom of F,O or N |
|
|
Term
|
Definition
a molecule containig bond dipoles that do not cancel |
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|
Term
in naming a compound when are roman numerals omitted? |
|
Definition
roman numerasls are omitted when the metal has only one valence |
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|
Term
what does the formula of an ionic compound indicate? |
|
Definition
it indicates the number and kinds of ions that make up the ionic compound. the sum of the ionic charges in the formula is always zero
note: that the ionic charges of the ions do not appear in the formula of the ionic compound.
the cation is always written first followed by the anion
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Term
how do you name metal ions and nonmetal ions? |
|
Definition
the name of a metal ion is the same as its elemental name. the name of a nonmetalion is obtained by replacing the end of its elemental name with ide. |
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Term
how do you name an ionic compound containing two elements? |
|
Definition
- the metal ion is named first follwed by the name of the nonmetal ion.
- subscripts are never mentioned; they are understood as a result of the charge balance of the ions in a compound
- ex. Mg2+Br- =MgBr2
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Term
why do transition metals form two or more kinds of positive ions? |
|
Definition
because they lose their outer electrons as well as electrons from a lower energy level.
when a metal can form two or more ions, it is not possible to predict the ionic charge from the group number. we say that is has a variable valence. |
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Term
How do you use a naming system to identify the particular cation in a compound? |
|
Definition
to do this, a Roman numeral that matches the ionic charge is placed in parentheses afer the elemental name of the metal.
zinc, cadmium and silver only form one ion. |
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|
Term
how do you select the correct Roman numeral? |
|
Definition
it depends upon the calculation of the ionic charge of the trasition metal in the formula.
ex. Cu2S
step 1: determine the charge of the cation from the anion. the nonmetal S in Group 6A forms the S2-, the charge of each Cu ion is 1+
Metal: Nonmetal
Element: Copper Sulfur
Group: Transition 6A
Ions: Cu ? S2-
Charge balance: 2(1+) + (2-) = 0
Ions: Cu+ S2-
step 2: name the cation by its element name, and use a roman numeral in parentheses for the charge
copper(I)
Step3: Name the anion by changing the last part of it's element name to ide.
sulfide
Step 4: write the name of the cation first and the name of the anion second.
copper(I)sulfide |
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|
Term
what is a polyatomic ion? |
|
Definition
an ionic compound with 3 or more elements contais some type of polyatomic ion, which is a group of atoms that has an ionic charge. most polyatomic ions consist of a nonmetal such as phosphorus, sulfur, carbon, or nitrgen bonded to oxygen atoms. these polyatomic ions have ionic charges 1-,2- or 3- because 1,2,3 electrons were gained by the atoms in the group to complete thier octets.
only one of the polyatomic ions is positively charged NH4+ |
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Term
How do you name polyatomic ions? |
|
Definition
the names of most polyatomic ions end in ate.
the ite ending is used for the names of related ions that have one less oxygen atom. |
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|
Term
How do you write formulas for compounds containing polyatomic ions? |
|
Definition
we follow the same rules of charge balance that we used for writing the formulas of simple ionic compounds. the total negative and positive charges must equal 0.
when more than one polyatomic ion is needed for charge balance, parentheses are used to enclose the formula of the ion. a subscript is written outside the closing parenthesis to indicate the number of polyatomic ions. |
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Term
how do you name compounds containing polyatomic ions? |
|
Definition
first write the positive ion, usually a metal, and then write th name of the polyatomic ion.
remember that other ionic compounds don't use prefixes. |
|
|
Term
how do nonmetals achieve stability?
|
|
Definition
atoms of nonmetals have high ionization energies ad do not lose electrons easily. thus, in covalent compounds, electrons are not transferred from one atom to another, but are shaed between atoms of nonmetals to achieve stability. |
|
|
Term
what happens when atoms share electrons? |
|
Definition
|
|
Term
|
Definition
elements that contain two like atoms |
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|
Term
how do you name a covalent compound? |
|
Definition
the first nonmetal is named by its elemental name; the second nonmetal is named with the ending changed to ide , subscripts indicating two or more atoms of an element are expressed as prefixes placed in front of each name. |
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Term
what are the prefixes used in naming covalent compounds? |
|
Definition
1 mono
2 di
3 tri
4 tetra
5 penta
6 hexa
7 hepta
8 octa
9 nona
10 deca |
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Term
why do covalent compounds need prefixes? |
|
Definition
because several different compounds can be formed from the same two nonmetals. for example, carbon and oxygen can form two different compounds, carbon monoxide CO and carbon dioxide CO2
- When vowels o and o
and
a and o
appear together, the first vowel is omitted as in corbon monoxide |
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Term
Write a formula for the covalent compound diboron trioxide. |
|
Definition
step 1: write the symbols in order of the elements in the names.
B O
Step 2 : write prefixes as subscripts.
B2O3 |
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Term
Why do nonmetals hav higher electronegativity than metals? |
|
Definition
because they have a greater attraction for electrons than metals |
|
|
Term
why do small atoms have high electronegativity? |
|
Definition
because the valence electrons they share are closer to their nuclei. |
|
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Term
When does electronegativty increase |
|
Definition
values increase from left to right across each period as well as from the bottom to the top of each group.
there are no electronegativity values for the noble gases because they do not typically form bonds. |
|
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Term
what are the ranges for predicting the types of bond between atoms. |
|
Definition
under .5 nonpolar covalent bond
.5 to 1.7 polar covalent bond
1.7 and up is ionic bond |
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Term
when electronegativity differences are from 0 to 0.4 the electrons are.... |
|
Definition
shared equally in a nonpolar covalent bond. |
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|
Term
as electronegativity differences increases, from .4 to 1.8 the bond is... |
|
Definition
polar covalent bond, this is when the it is increasing, the shared electrons are attracted more strongly to the more electronegative atom and the polarity of the bond increases. |
|
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Term
differences in electronegativty of 1.8 or greater indicate a bond is? |
|
Definition
ionic
eventually the difference in electronegativy is great enough that electrons are transferred from one atom to another, which results in an ionic bond.
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|
|
Term
|
Definition
it is the valence-shell electron-pair repulsion theory it indicates that electron groups will move as far apart as possible to reduce the repulsion between their negative charges. |
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|
Term
a molecule with four electron pairs, but just 3 bonded atoms has a ___________ shape. |
|
Definition
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|
Term
a molecule with four electron pairs, but just two bonded atoms, has a _________ shape. |
|
Definition
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|
Term
why are diatomic molecules nonpolar |
|
Definition
because they contain one nonpolar covalent bond |
|
|
Term
what is a nonpolar molecule? |
|
Definition
a molecule with 2 or more polar bonds can be a nonpolar mol if the polar bonds have a symmetrical arrangement in the molecule. |
|
|
Term
what is a polar molecule? |
|
Definition
one end of the molecule is more negativly charged than another end. polarity in a molecule occurs when the polar bonds do not cancel each other. |
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|
Term
what happens when the polar bonds or dipoles in a molecule cancel each other, the molecule is? |
|
Definition
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|
Term
why do ionic compounds have high melting points? |
|
Definition
large amounts of energy are needed to overcome the strong attractive forces between positive and negative ions. |
|
|
Term
talk about dipole-dipole attractions |
|
Definition
for polar molecules , attractive forces called dipole-dipole attractions occur between the positive end of one molecule and the negative end of another. |
|
|
Term
talk about a hydrogen bond |
|
Definition
when an hydrogen atom is attached to highly electronegative atoms of fluorine, oxygen, or nitrogen, there are strong dipole-dipole attractions between the polar molecules. hydrogen bond occurs between the partially positive hydrogen atom of one molecule and a lone pair of electrons on N, O, or F atoms in another molecule. hydrogen bonds are the strongest type of attractive forces between polar mols. |
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|
Term
do nonpolar compounds form solids? |
|
Definition
nonpolar compounds do form solids, but at low temperatures. very weak attractions called dispersion forces occur between nonpolar molecules.
disstriubted symmetrically
form liquids and solids |
|
|
Term
what are the melting points of substances related to? |
|
Definition
related to the strength of the attractive forces within the compound. compounds w weak attractive forces such as dispersion forces have low melting points because only a small amt of energy is needed to seperate the molecules and form a liquid. |
|
|
Term
where are the highest melting points seen? |
|
Definition
with ioic compounds that have very strong attractions between ions. |
|
|
Term
|
Definition
we have seen that a change of state involves a change in the physical properties of substance. such a changes, called a physical change, alters the appearance of a substance, but not it's formula |
|
|
Term
|
Definition
the reacting substances change into new substances that have different formulas and different properties. |
|
|
Term
compare chemical and physical changes |
|
Definition
Chemical changes Physical changes
rusting nail melting ice
bleaching a stain boiling water
burning a log sawing a log in half
tarnishing silver tearing paper
fermenting grapes breaking a glass
souring of milk pouring milk |
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|
Term
what is a chemical reaction? |
|
Definition
a chemical reaction alwasy involves chemical change as bonds between the atoms in the original substances are broken and new bonds are formed.
during a chemical change, new properties become visibly, which are clues that tell you a chemical reaction has taken place |
|
|
Term
what are types of visible evidence of a chemical reaction? |
|
Definition
change in colour
formation of gas (|bubbles)
formation of a solid (precipiate)
heat (or a flame) produced by heat absorbed |
|
|
Term
what is a chemical equation? |
|
Definition
a chemical equation tells us the materials we need and the products taht will form in a chemical reaction. |
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|
Term
show a chemical equation for the following:
when you burn charcoal in a grill, the carbon in the charcoal combines with oxygen to form carbon dioxide. |
|
Definition
Equation: C(s) + O2(g) ----> CO2 (g)
Reactants Product |
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|
Term
what does a delta sign mean (triangle) |
|
Definition
indicates that heat was used to start the reaction |
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|
Term
when would you use (aq) as an abbreviation in a chemical formula? |
|
Definition
if a a substance is dissolved in water. it is an acqueous solution (aq) |
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|
Term
can atoms be gained, lost or changed into other types of atoms during a chemical reaction? |
|
Definition
NO,
every reaction must be showed as a balanced equation, which shows the same number of atoms for each element on both sides of the arrow. |
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Term
how do you balance an equation? |
|
Definition
to balance an equation you place whole numbers called coefficients in fron of some of the formulas. |
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|
Term
can you change a subscript when trying to balance an equation? |
|
Definition
|
|
Term
if an equation is balanced but with higher numbers than necessary, is that correct? |
|
Definition
No , in an equation, the coefficients must be the lowest set of whole numbers that gives the same number of atoms of each element on both sides of the equation |
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|
Term
write an equation for the following.
we can now balance the equation for the reaction of gas methane, CH4, and oxygen to produce carbon dioxide and water. this is the reaction that occurs in the flame of gas burner you use in the labratory and in the burners of a gas stove. |
|
Definition
CH4(g) + O2 ----> CO2(g) + H2O (g) |
|
|
Term
what is a combination reaction? |
|
Definition
in a combination reaction, two or more elements or compounds bond to form one product.
for example, sulfur and oxygen combine to form the product sulfur dioxide.
S(s) + O2(g) ----> SO2(g)
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|
Term
what type of reaction is this:
the elements magnesium and oxygen combine to form a single product, magnesium oxide.
2Mg(s) + O2(g) ---> 2MGO(s) |
|
Definition
|
|
Term
what is a decomposition reaction? |
|
Definition
in a decomposition reaction, a reactant splits into two or more simpler products.
for example when mercury(II)oxide is heated, the compound breaks apart into mercury atoms and oxygen.
heated
2HgO(s) ----> 2Hg(l) + 02(g) |
|
|
Term
what is a replacement reaction? |
|
Definition
in a replacement reaction, elements in a compound are replaced by other elements.
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|
Term
Replacement Reactions
what is a single replacement reaction
|
|
Definition
a reacting element switches places with an element in the other reacting compound.
A + BC -----> AC + B
One element replaces another element
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|
|
Term
what is this an example of
Zn(s) + 2HCL(aq) ------> ZnCl2(aq) + H2(g) |
|
Definition
|
|
Term
Replacement reaction
what is a double replacement reaction?
|
|
Definition
the positive ions in the reacting compounds switch places.
AB + CD ---------> AD + CB
Two elements replace each other |
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|
Term
Classify the following reactions as combination, decomposition, or single or double replacement:
- 2Fe2O3(s) + 3C(s) ----> 3CO2(g) + 4Fe(s)
- Fe2S3(s) ---->2Fe(s) + 3S(s)
- 2AgNO3(aq) + MgCl(aq) ----> 2AgCl(s) + Mg(NO3)2 (aq)
|
|
Definition
- Single replacement reaction
- decomposition
- double replacement reaction
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|
|
Term
what happens in oxidation-reduction reaction (redox) |
|
Definition
electrons are transferred from one substance to another. if one substance loses electrongs , another substance must gain electrongs |
|
|
Term
|
Definition
|
|
Term
|
Definition
|
|
Term
Fill in the blank
in general, atoms of _____ lose electrons to form ___________ ions. whereas _____________ gain electrons to form _____________ ions. now we can say that metals are _______________ and ________________ are reduced. |
|
Definition
in general, atoms of metals lose electrons to form positive ions. whereas nonmetals gain electrons to form negative ions. now we can say that metals are oxidized and nonmetals are reduced. |
|
|
Term
oxidation-reduction reactions
in photographic film, the following decomposition reaction occurs in the presence of light. what is oxidized and what is reduced?
light
2AgBr(s)-------->Br2(g) |
|
Definition
To determine oxidation and reduction, we need to look at ions and charges in the reactant. in AgBr, there is a silver ion
Ag+ with a 1+ charge and a bromide ion (Br-) with a charge of 1-. we can write the reaction as follows:
2Ag+(aq) + 2Br-(aq) ------>2Ag(s) + Br2(g)
now we can compare Ag+ with the product Ag atom. int his case, each Ag+ gained an electron, which is reduction.
2Ag+(aq) + 2e-----> 2Ag(s) reduction
then we compare the Br- with the Br iin the product Br2. In this case, each Br- lost an electron, which is oxidation.
2Br-(aq) -----> Br2(g) + 2e- oxidation
in this reaction , bromide ion is oxidized and silive ion is reduced. |
|
|
Term
|
Definition
the final form of a chemical equation that shows the same number of atoms of each element in teh reactants and products. |
|
|
Term
what is a polyatomic ion? |
|
Definition
is a group of atoms
has an overall ionic charge |
|
|
Term
how do you name a polyatomic ion? |
|
Definition
the positive ion first, followed by the name of the polyatomic ion |
|
|
Term
talk about nonpolar covalent bonds |
|
Definition
- occurs between nonmetals
- is an equal or almost equal sharing of electrons
- has almost no electronegativity difference 0.0 - 0.4
|
|
|
Term
talk about a polar covalent bond |
|
Definition
- occurs between nonmetal atoms
- is an unequal sharing of electrons
- has a moderate electronegativity difference .5 to 1.7
|
|
|
Term
|
Definition
- occurs between metals and nonmetals
- is a result of electron transfer
- has a large electronegativity difference 1.8 or more
|
|
|
Term
talk about melting points and attractive forces |
|
Definition
- ionic compounds requare large amounts of energy to break apart ionic bonds. thus, they have high melting points.
- hydrogen bonds are the strongest type of dipole-dipole attractions. they require more energy to break than other dipole-dipole attractions.
- dispersion factors are weak interactions and very little energy is needed to change state.
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