Chemical Reactions

ChemicalReactions

Chemical Equations • A chemical reaction shows the formulas and relative amounts of reactants and products in a reaction. 4 Al (s) + 3 O2 (g)  2 Al2O3 (s) reactants product stoichiometric coefficients physical state s, l, g or aq

Chemical Equations • 4 Al (s) + 3 O2 (g)  2 Al2O3 (s) • Interpret this equation as • 4 atoms solid Al react with 3 molecules gaseous O2 to form 2 formula units of solid Al2O3 • 4 moles solid Al react with 3 moles gaseous O2 to form 2 moles of solid Al2O3

Balancing Chemical Equations “Matter is conserved in chemical change” Antoine Lavoisier, 1789 An equation must be balanced: It must have the same number of atoms of each kind on both sides

The rules of the game • Write the correct formulas of the reactants and products • Do not change the formulas to balance the equation • Put a coefficient in front of each formula so that the same number of atoms of each kind appear in both the reactants and products • The coefficent multiplies through its formula • 2 H2O shows 4 H atoms and 2 O atoms

Example 1 • Balance this equation: N2 + H2 NH3 • There are 2 Ns on the left, we need 2 Ns on the right • Put a coefficient of 2 in front of NH3 • N2 + H2 2 NH3 • Now there are 6 Hs on the right, we need 6 on the left • Put a coefficient of 3 in front of H2 • N2 + 3 H2 2 NH3 • Balanced equation shows 2 Ns and 6 Hs on each side.

Example 2 • Balance this equation: CH4 + O2 CO2 + H2O • There is one C on each side. Cs are balanced • There are 4 Hs on left, 2 on right. Put a 2 in front of H2O • CH4 + O2 CO2 + 2 H2O • There are 2 + 2 = 4 Os on right. Put a 2 in front of O2 • CH4 + 2 O2 CO2 + 2 H2O • Balanced equation has 1 C, 4 Hs, and 4 Os on each side

Balance these equationsand list the coefficients from left to right(including coefficients of one) • HgO (s)  Hg (l) + O2 (g) • 2 HgO (s)  2 Hg (l) + O2 (g) Answer 2, 2, 1 • Mg (s) + HCl (aq)  MgCl2 (aq) + H2 (g) • Mg (s) + 2 HCl (aq)  MgCl2 (aq) + H2 (g) Answer 1, 2, 1, 1

Balance these equationsand list the coefficients from left to right(including coefficients of one) • C3H8 (g) + O2 (g)  CO2 (g) + H2O (l) • C3H8 (g) + 5 O2 (g)  3 CO2 (g) + 4 H2O (l) Answer 1, 5, 3, 4 • Al (s) + Cl2 (g)  AlCl3 (s) • 2 Al (s) + 3 Cl2 (g)  2 AlCl3 (s) Answer 2, 3, 2

Balance these equationsand list the coefficients from left to right(including coefficients of one) • H2O2 (aq)  H2O (l) + O2 (g) • 2 H2O2 (aq)   H2O (l) + O2 (g) Answer 2, 2, 1 • C4H10 (g) + O2 (g)  CO2 (g) + H2O (l) • 2 C4H10 (g) + 13 O2 (g)  8 CO2 (g) + 10 H2O (l) Answer 2, 13, 8, 10

Combustion Reactions • In combustion, a hydrocarbon or C–H–O fuel combines with O2 to form CO2 and H2O __ CH4 + __ O2 __ CO2 + __ H2O 1 CH4 + 2 O2 1 CO2 + 2 H2O Balanced equation shows 1 C, 4 H, and 4 O on each side • If N or S are in the formula for the fuel, assume it is oxidized to NO2 or SO2

Reaction types • Synthesis or combination A + B → C • 2 or more formulas combine to make one product • Decomposition C → A + B • One formula breaks apart into 2 or more formulas • Combustion • C, H, O fuel + O2→ CO2 + H2O • Single replacement A + BX → AX + B • One element pushes another element out of a compound • Double replacement AX + BY → AY + BX • Two compounds switch partners

Reaction types • Classify each reaction as combination, decomposition, combustion, single replacement, or double replacement: • 2 C2H6 + 7 O2→ 4 CO2 + 6 H2O • 2 Na + Cl2 → 2 NaCl • Cl2 + 2 KBr → 2 KCl + Br2 • NH4NO3 → N2O + 2 H2O • K2SO4 + BaCl2 → BaSO4 + 2 KCl

Stoichiometry • Stoichiometry is chemical accounting • Heart of stoichiometry is mole ratio given by coefficients of balanced equation

mole ratio moles B moles A moles A moles B Stoichiometry • Stoichiometry is chemical accounting • Heart of stoichiometry is mole ratio given by coefficients of balanced equation

Example • How many moles of O2 are produced from the decomposition of 1.76 mol KClO3: 2 KClO3 (s)  2 KCl (s) + 3 O2 (g) • Question about O2 but information for KClO3 • O2 and KClO3 related by coefficients of balanced equation. • Coefficients are in moles: 2 mol KClO3 : 3 mol O2

Example • How many moles of O2 are produced from the decomposition of 1.76 mol KClO3: 2 KClO3 (s)  2 KCl (s) + 3 O2 (g)

Example • How many moles of CO2 form when 0.35 mol C2H6 burn? 2 C2H6 + 7 O2→ 4 CO2 + 6 H2O

Example • How many grams of Al react with 0.15 moles HCl: 2 Al (s) + 6 HCl (aq)  2 AlCl3 (aq) + 3 H2 (g) • Coefficients are in moles • Two steps: convert mol HCl to mol Al, then convert mol Al to grams

Example • How many moles of Ag are produced when 10.0 g Ag2O decompose: 2 Ag2O (s)  4 Ag (s) + O2 (g) • Two steps: first convert g Ag2O to mol Ag2O, then use mole ratio to find moles Ag

Example • How many grams of H2 (g) are needed to produce 100.0 g of CH3OH: CO (g) + 2 H2 (g)  CH3OH (l)

Example • How many grams of O2 react with 268 grams of octane (C8H18) in the combustion of octane? 2 C8H18 + 25 O2 16 CO2 + 18 H2O

mole ratio moles B moles A moles A moles B grams A grams B Stoichiometry • Convert to moles (÷ molar mass) • Use the mole ratio • Convert new moles back to grams (x new molar mass)

Example • Balance the chemical equation • Identify the type of reaction • Calculate how many moles of AgNO3 are needed to produce 3.17 g Ag2CO3 AgNO3 + K2CO3 Ag2CO3 + KNO3

Example • Balance the chemical equation • Identify the type of reaction • Calculate how many grams of Al are needed to produce 0.045 g H2 Al (s) + HCl (aq)  AlCl3 (aq) + H2 (g)

Chemical Reactions in Solution • Most reactions occur in aqueous solution • SOLUTE is the substance to be dissolved in solution • SOLVENT is the substance (often a liquid) the solute dissolves in • The concentration of the solution is Molarity (M) = moles solute L solution

Example 4-8B • 15.0 mL of concentrated acetic acid, HC2H3O2 (d = 1.048 g/mL), are dissolved in enough water to produce 500.0 mL of solution. What is the concentration of the solution?

Example 4-9B • How many grams of Na2SO4 • 10 H2O are needed to prepare 355 mL of 0.445 M Na2SO4?

Dilution problems • It is common to prepare a solution by diluting a more concentrated solution (the stock solution). • The moles of solute taken from the stock solution are given by moles solute = volume x molarity • All the solute taken from the stock appears in the diluted solution, so moles solute are constant: VstockMstock = VdiluteMdilute

Example 4-10A • 15.00 mL of 0.450 M K2CrO4 solution are diluted to 100.00 mL. What is the concentration of the dilute solution?

Example 4-10B • After being left out in an open beaker, 275 mL of 0.105 M NaCl has evaporated to only 237 mL. What is the concentration of the solution after evaporation?

grams A grams B mole ratio moles B moles A moles A moles B mL A mL B Stoichiometry in Solution • Stoichiometry in solution is just the same as for mass problems, except the conversion into or out of moles uses molarity instead of molar mass:

Example 4-11B K2CrO4 (aq) + 2 AgNO3 (aq)  Ag2CrO4 (s) + 2 KNO3 (aq) • How many mL of 0.150 M AgNO3 must react with excess K2CrO4 to produce exactly 1.00 g Ag2CrO4?

Limiting reactant • In a given reaction, often there is not enough of one reactant to use up the other reactant completely • The reactant in short supply LIMITS the quantity of product that can be formed

Goldilocks Chemistry • Imagine reacting different amounts of Zn with 0.100 mol HCl: Zn (s) + 2 HCl (aq)  ZnCl2 (aq) + H2 (g) Rxn 1Rxn 2Rxn 3 Mass Zn 6.54 g3.27 g1.31 g Moles Zn 0.100 mol0.0500 mol0.0200 mol Moles HCl 0.100 mol0.100 mol0.100 mol Ratio mol HCl1.002.005.00 mol Zn

Limiting reactant problems • The easiest way to do these is to do two stoichiometry calculations • Find the amount of product possible from each reactant • The smaller answer is the amount of product you can actually make (you just ran out of one reactant) • The reactant on which that answer was based is the limiting reactant

Example 4-13B • 12.2 g H2 and 154 g O2 are allowed to react. Identify the limiting reactant, which gas remains after the reaction, and what mass of it is left over. 2 H2 (g) + O2 (g)  2 H2O (l)

Percent Yield • In real experiments we often do not get the amount of product we calculate we should, because • the reactants may participate in other reactions (side reactions) that produce other products (by-products) • The reaction often does not go to completion. • Percent yield tells the ratio of actual to theoretical amount formed.

Percent Yield • Suppose you calculate that a reaction will produce 50.0 g of product. This is the theoretical yield. • The reaction actually produces only 45.0 g of product . This is the actual yield. • Percent yield = 45.0 g (actual) x 100 = 90.0% 50.0 g (theoretical)

Example 4-14B • What is the percent yield if 25.0 g P4 reacts with 91.5 g Cl2 to produce 104 g PCl3: P4 (s) + 6 Cl2 (g)  4 PCl3 (l)

Example 4-15B • What mass of C6H11OH should you start with to produce 45.0 g C6H10 if the reaction has 86.2% yield and the C6H11OH is 92.3% pure: C6H11OH (l)  C6H10 + H2O (l)

Exercise 26 • Balance these equations by inspection • (NH4)2Cr2O7 (s)  Cr2O3 (s) + N2 (g) + H2O (g) • NO2 (g) + H2O (l)  HNO3 (aq) + NO (g) • H2S (g) + SO2 (g)  S (g) + H2O (g) • SO2Cl2 + HI  H2S + H2O + HCl + I2

Exercise 30 • Write balanced equations for these reactions: • Sulfur dioxide gas with oxygen gas to produce sulfur trioxide gas • Solid calcium carbonate with water and dissolved carbon dioxide to produce aqueous calcium hydrogen carbonate • Ammonia gas and nitrogen monoxide gas to produce nitrogen gas and water vapor

Exercise 32 • 3 Fe (s) + 4 H2O (g)  Fe3O4 (s) + H2 (g) • How many moles of H2 can be produced from 42.7 g Fe and excess steam? • How many grams of H2O are consumed in the conversion of 63.5 g Fe to Fe3O4? • If 7.36 mol H2 are produced, how many grams of Fe3O4 must also be produced?

Exercise 36 • Silver oxide decomposes above 300 °C to yield metallic silver and oxygen gas. 3.13 g impure silver oxide yields 0.187 g O2. Assuming there is no other source of O2, what is the % Ag2O by mass in the original sample?

Chemical Reactions