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  Chemical reactions involve breaking and/or making bonds and rearranging atoms.  Breaking bonds requires energy and making bonds releases energy.

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Presentation on theme: "  Chemical reactions involve breaking and/or making bonds and rearranging atoms.  Breaking bonds requires energy and making bonds releases energy."— Presentation transcript:

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2   Chemical reactions involve breaking and/or making bonds and rearranging atoms.  Breaking bonds requires energy and making bonds releases energy.  Heat- the energy that is transferred from one object to another due to a difference in temperature  Temperature – average kinetic energy of a substance 12-1 Chemical Reactions that Involve Heat

3   Exothermic reactions – reactions that RELEASE heat  Endothermic reactions – reactions that ABSORB heat  Surroundings vs. system Thermochemistry – study of the changes in heat in a chemical reaction.

4   Burning of a camp stove (propane C 3 H 8 ) C 3 H 8 + 5O 2  3CO 2 + 4H 2 O + 2043 kJ  2043 kJ of heat are released when 1 mole of C 3 H 8 is burned.  The energy released during forming new bonds is greater than the energy required to break the old bonds…end result is RELEASE of energy… EXOTHERMIC Exothermic reactions:

5   A process in fuel industry called water gas, when steam (H 2 O) is passed over hot coals (C) C + H 2 O + 113KJ  CO + H 2  The energy released as new bonds are formed in the products is less than the energy required to break the bonds in the reactants. This energy must be provided for the reaction to take place and is stored in the bonds of the products…end result is ABSORBING of energy… ENDOTHERMIC Endothermic Reactions:

6   Enthalpy – the heat absorbed or gained during a chemical reaction.  The difference between energy and enthalpy is very subtle. When the pressure remains constant, the energy absorbed or released during a chemical reaction is equal to the enthalpy change for the reaction. 12-2 Heat and Enthalpy Changes

7   Temperature change (∆ T) ∆ T = T final – T initial  Enthalpy change ∆H ∆H = H products – H reactants (not used to calculate though) Sign ∆HProcessHeat +EndoAbsorbed -ExoReleased Interpreting data

8   How much heat will be released if 1.0g of H 2 O 2 decomposes in a beetle to produce the steam spray (see picture above)? 2H 2 O 2  2H 2 O + O 2 ∆H = -190KJ …hint – think stoich with heat ∆H as part of the ratio  1.0g H 2 O 2 x 1mol H 2 O 2 x -190kJ = -2.8KJ 34 g 2 mol H 2 O 2 Sample problem… Bombadier beetle →

9   Hess’s Law- if a series of reactions are added together, the enthalpy change for the net reaction will be the sum of the enthalpy changes for the individual steps.  Allows you to find enthalpy changes of reactions that cannot be measured directly 12-3 Hess’s Law

10  N 2 + 2O 2  2NO 2 (net reaction) N 2 + O 2  2NO ∆H = +181 kJ (equation 1) 2NO + O 2  2NO 2 ∆H 2 = -113 kJ (equation 2) N 2 + 2O 2 + 2NO  2NO + 2NO 2 (net reaction) ∆H net = ∆H equation 1 + ∆H equation 2 ∆H = 181 + -113 = 68 kJ Consider the haze in a large city

11   If you multiply or divide the coefficients by a number do the same to ∆H.  If the equation is reversed, so is the sign of ∆H. Rules for applying Hess’s Law

12   Calculate ∆H for the reaction that produces SO 2… S + O 2  SO 2  2SO 2 + O 2  2SO 3 ∆H = -196KJ (equation 1)  2S + 3O 2  2SO 3 ∆H = -790 KJ (equation 2) Let’s try one…

13   1 st look at the products and reactants in the net equation and see if they are on the same side in one of the numbered equations…if not FLIP the equations to get them on the correct side (don’t forget that the ∆H must change accordingly)  2SO 3  2SO 2 + O 2 ∆H = 196 kJ (equation 1)  2 nd look at the coefficients for the net equation and see if they will match the numbered equations…if not X or /all by the correct number to get the coefficients you need (don’t forget that the ∆H must change accordingly)  SO 3  SO 2 + ½ O 2 ∆H = 98 kJ (equation 1)  S + 3/2 O 2  SO 3 ∆H = -395 kJ (equation 2)

14   SO 3  SO 2 + ½ O 2 ∆H = 98 kJ (equation 1)  S + 3/2 O 2  SO 3 ∆H = -395 kJ (equation 2) SO 3 + S + 3/2 O 2 → SO 2 + ½ O 2 + SO 3 S + O 2  SO 2 (net reaction) ∆H = 98 kJ + -395 kJ ∆H = -297 kJ

15   WS 12-3 PP try # 2  Answer: -123 kJ  HW…do 2 – 4 You try it now…

16   Calorimetry- the indirect study of heat flow and heat measurement  Heat capacity – the amount of heat needed to raise the temperature of the object by 1 Celsius degree.  For example, the heat capacity of a cup of water at 18 o C is the number of joules needed to make it 19.  Depends on mass and composition 12-4 Calorimetry

17   Specific heat capacity (c) – the heat capacity of 1 gram of a substance c water = 4.184 J/g ⁰ C  To raise the temp of 1 gram of water 1 ⁰ C you need to add 4.184 J of energy

18  Q = mc∆T Q surroundings = - Q system  Q = quantity of energy transferred (heat)  m = mass of substance that gains/loses energy  ∆T = change in temperature of substance that gains/loses energy  c = specific heat capacity of substance that gains/loses energy Calorimetry Equations

19   Determine ∆H for the addition of NaOH to water when the calorimeter is filled with 75.0g water. The initial temp is 19.8 ⁰ C. A 2.0 g sample of solid NaOH is added and the temp increases to 26.7 ⁰ C.  4 steps:  Calculate Q water (surroundings)  Determine Q system  Convert g solid added to moles  ∆H = Q system /moles solid added Let’s try one…

20   Step 1: Q surroundings = mc∆T Q surroundings = (75.0g)(4.184J/g ⁰ C)(26.7 – 19.8 ⁰ C) Q surroundings = +2165 J  Step 2: Q surroundings = -Q system …so Q system = -2165 J  Step 3: 2.0 g NaOH x 1 mol NaOH = 0.050 mol NaOH 40.0 g NaOH  ∆H = -2165 J = -43, 304 J 0.050 mole NaOH The work…

21   When a 4.25 g sample of solid NH 4 OH dissolves in 60.0 g of water, the temperature drops from 21.0 ⁰ C to 16.9 ⁰ C solve ∆H.

22   1st calculate Q surroundings Q surroundings = mc∆T Q surroundings = (60.0g )(4.184J/g ⁰ C)(16.9 ⁰ C -21.0 ⁰ C) Q surroundings = -1029 J  2 nd Q system = -Q surroundings = + 1029 J  3 rd 4.25g NH 4 OH x 1 mole NH 4 OH = 0.121mNH 4 OH 35 g NH 4 OH  4 th ∆H = 1029 J = +8504 J 0.121mNH 4 OH

23   We can use Q=mc∆T to solve for other variables in the equation…specifically c c = Q m ∆T  Ex. What is the specific heat of a piece of silver if 30.8 g sample increases 11.2 ⁰C when 81 J of heat are added? c = 81 J = 0.23 J/g ⁰C (30.8 g)(11.2 ⁰C) Calculating c…(specific heat capacity)

24   WS 12-4 PP WS do number 2  Answer: 0.90 J/g ⁰C You try one now…

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