How do you recognize that a chemical reaction is a single replacement reaction?
There is a free element on one side and the element is in a compound on the other side.
What is the oxidation number of any alkali metal?
+1
Define what a redox reaction is.
Reaction where electrons are transferred between elements. One element is oxidized and one element is reduced.
Which of the following metals is the easiest to oxidize?
Cu Fe Al Zn
Al- highest on activity series
Which elements on the periodic table are most stable?
Explain.
noble gases. They have 8 valence electrons
Predict the products:
Ba + Ni3(PO4)2 ---->
Ba + Ni3(PO4)2 ----> Ni + Ba3(PO4)2
Determine the oxidation number of all elements in H4P2O7
H = +1
P = +5
O = -2
Which element is oxidized? Which is reduced?
PbCl2 + Mg -----> MgCl2 + Pb
Oxidized: Mg
Reduced: Pb
You bury an iron tank in your backyard. Name two metals you should attach to the iron tank to slow down the rusting of the iron.
Zn, Mg, Al (metals that are more reactive than iron, but not too reactive that they will react with water)
What is the complete electron configuration for tin.
1s22s22p63s23p64s23d104p65s24d105p2
Predict the products: (names and formulas)
Lead(II)chloride + magnesium ----->
Lead(II)chloride + magnesium -----> magnesium chloride + lead
PbCl2 + Mg ----> Pb + MgCl2
What happens to an element's physical structure when it is oxidized?
What happens to an element's physical structure when it is reduced?
Oxidized: loses electrons
Reduced: gains electrons
What element is reduced? Write the half reaction.
What element is oxidized? Write the half reaction.
Cu + AgNO3----> Ag + Cu(NO3)2
Reduced: Ag
Ag+1 + 1 e- ----> Ag
Oxidized: Cu
Cu -----> Cu+2 + 2 e-
Name two elements that you would never find in their "pure" (uncombined with any other element) in nature. Explain your answer.
Na, Ca, K, Zn
These metals are too reactive. They will oxidize readily (lose electrons) to other elements such as oxygen very quickly.
What is the noble gas electron configuration for lead.
[Xe] 6s24f145d106p2
Predict the products:
K + H2O ---->
Br2 + NaF ---->
K + H2O ----> KOH + H2
Br2 + NaF ----> N.R.
CaH2
CH4
H2CO3
Ca = +2 H = -1
C = -4 H = +1
H = +1 C = +4 O = -2
Name two elements off the periodic table that are very good oxidizers. Explain your answer.
F, O, Cl. They have high electronegativity values, so they steal electrons from other elements, thus oxidizing them.
What is the most reactive halogen?
Describe what makes it so reactive?
Fluorine
It has the highest electronegativity value, so it is very good at taking electrons from other elements.
Give the number of energy levels and the number of electrons in each level for Xenon.
5 energy levels
1st = 2e-
2nd = 8e-
3rd = 18e-
4th = 18e-
5th = 8e-
What property makes the one metal more reactive than another metal?
Metals lose electrons to react. Therefore, the metal with the lower electronegativity value will lose electrons more readily, and is more reactive.
Determine oxidation number for all elements.
Al +H2SO4 ----> Al2(SO4)3 + H2
What element is reduced?
What element is oxidized?
Reduced: Hydrogen
Oxidized: Aluminum
Most metals are mined as ores. They then need to be extracted from their ores. Describe 3 processes to remove metals from their ores.
1. Electrolysis: Electricity separates the elements
2. Smelting: Heating to high temperatures in presence of carbon
3. Roasting: Heating a sulfide ore in the presence of air
4. Hydrometallurgy: the use of aqueous solutions (often acids)
1. What is the third most reactive metal on the metal activity series?
2. What is the second most reactive halogen?
3. If you put these two elements together, which would be oxidized and which would be reduced?
4. What would be the formula of the compound made?
1. Barium
2. Chlorine
3. Barium = oxidized
Chlorine = reduced
4. BaCl2
Give the complete electron configuration, noble gas electron configuration, and Bohr model for Uranium.
1s22s22p63s23p64s23d104p65s24d105p66s24f145d106p67s25f4
[Rn] 7s25f4
92 p
146 n
7 levels: 2, 8, 18, 32, 22, 8, 2