How many particles are in each of the following?
CaO
2
How many particles are in each of the following?
HgNO3
5
How many particles are in each of the following?
P2Si3H8
13
How many particles are in each of the following?
H2O
3
How many particles are in each of the following?
O2
2
How many molecules are in a mole?
6.022x1023
How many liters are there at standard temperature and pressure if 1 mole of gas is present?
22.4L
Given an empirical formula is the smallest whole number ratio of a molecule which of the following is an empirical formula?
A) C5H10O5
B) C6H12O2
C) C55H72N4O5
C
Given an empirical formula is the smallest whole number ratio of a molecule which of the following is not an empirical formula?
A) C5H10O5
B) C6H11O2
C) C55H72N3O5
A
Given an empirical formula is the smallest whole number ratio of a molecule which of the following is not an empirical formula?
A) N3H9O6
B) C5H12O2
C) C5H7N4O5
A
How many atoms are in the following?
1.35mol of Hg
1.35mol (6.022x1023molecules/1 mol)
(1 atom/1molecule)=8.130x1023
How many atoms are in the following?
13mol of CN
13mol (6.022x1023molecules/1 mol)
*(2atom/1molecule)=1.566x1025
How many moles are in the following?
6.022x1025 atoms S
6.022x1025atoms(1molecule/1 atom)
*(1 mol/6.022x1023molecules)=100 mol S
How many moles are in the following?
1.35x1019 atoms He
1.35x1019atoms(1molecule/1 atom)
*(1 mol/6.022x1023molecules)
=2.242x10-5mol He
How many moles are in the following?
15.9 L of NO3
15.9L(1mol/22.4L)= 0.710mol
How many moles are in the following?
32.7 L of O2
32.7L(1mol/22.4L)= 1.460mol
How many grams are in the following?
32.7 L of H2
32.7L(1mol/22.4L)(2.016g/1mol)=2.943g
How many grams are in the following?
19.3 L of O2C2H8
19.3L(1mol/22.4L)(64.084g/1mol)=55.215g
What is the percent composition of the compound that occurs when 2.70g of aluminum combines with oxygen to form 5.10g of aluminum oxide?
5.1g AL2O3 - 2.7g Al = 2.4g O
(2.7g/5.1g)*100% = 52.941% Al
(2.4g/5.1g)*100% = 47.059% O
What is the percent composition of the compound that occurs when 7.2g of aluminum combines with oxygen to form 18.3g of aluminum oxide(Al and O)?
18.3g AL2O3 - 7.2g Al = 11.1g O
(7.2g/18.3g)*100% = 39.344% Al
(11.1g/18.3g)*100% = 60.658% O
Calculate the percent composition of OH
mass O= 15.999; H= 1.008
total= 17.007g
(15.999/17.007)*100%= 94.073% O
(1.008/17.007)*100%= 5.927%H
Calculate the percent composition of Mn(OH)4
mass Mn= 54.998; O*4= 63.996; H*4= 4.032
total= 123.026
(54.998/123.026)*100%= 44.704% Mn
(63.996/123.026)*100%= 51.989% O
(4.032/123.026)*100%= 3.277%H
Calculate the percent composition of Mg(OH)2.
mass Mg= 24.305; O*2= 31.998; H*2= 2.016
total= 58.319g
(24.305/58.319)*100%= 41.676% Mg
(31.998/58.319)*100%= 54.867% O
(2.016/58.319)*100%= 3.457%H
Determine the empirical formula for a compound that is 63.52% Fe and 36.48% S.
mass Fe=55.845; S=32.06
63.52/55.845 =1.137
36.48/32.06 =1.137
Divide by smallest gives both being 1. =FeS
Determine the empirical formula for a compound that is 71.72% Cl, 16.16% O, and 12.12% C.
mass Cl=35.45; O=15.999; C=12.011
71.72/35.45 =2.023
16.16/15.999 =1.010
12.12/12.011 =1.009
Divide by smallest gives Cl~2; O~1; and C=1.
Cl2OC