chapter 15 - standard enthalpy change of a reaction
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Chapter 15 - Standard enthalpy change of a reaction
Standard Enthalpy Changes Hana Amir and Madeley
Definition
•Any reaction that depends on temperature, pressure and state
•The enthalpy change happens when all reactants and products are in their standard state.
Some enthalpies Enthalpy of reaction Enthalpy of formation Enthalpy of neutralization Enthalpy of hydration Enthalpy of combustion Enthalpy of solution Enthalpy of atomization
Standard Enthalpy Changes of Reaction
•Definition:The heat change when molar quantities of reactants as specified by the chemical equation react to form products at standard conditions
It depends in the physical state of reactants and the products and the conditions under which the reaction occurs.
Standard conditions are: 298K (25o C) and 1.00*105 Pa
Standard Enthalpy change of Formation
Enthalpy change that occurs when one mole of substance is formed from its elements in the standard state under standard conditions.
Standard conditionsTemperature: 298K (25o C)
Pressure: 1.00*105 Pa
2C(graphite) + 3H2(g) + 1/2O2(g)-------> C2H5OH (I)
• All elements in their standard states (oxygen gas, solid carbon in the form of graphite, etc.) have a standard enthalpy of formation of zero, as there is no change involved.
Eg: O(g) + O(g) ---->O2(g)
Energy CycleΔHѳreaction
ΔHѳf(products)ΔHѳf(reactants)
ProductsReactants
Elements
From the diagram we get:The chemical change elements to productscan either occur directly or indirectly .●The Total enthalpy change must be the same for both routes.
•Σ∆Hѳf (Products)= Σ∆Hѳf (Reactants) + ∆Hѳreaction
This gives the general expression of:∆Hѳ reaction = Σ∆Hѳf (Products) - Σ∆Hѳf (Reactants)
ExampleCalculate the enthalpy change for the reaction:
C3H8(g) + 5O2(g)-------- 3CO2(g) + 4H2O(g)
Standard change of formation: ∆Hѳf /kJ mol-1C3H8(g) : -105CO2(g): -394H2O(l): -286
Steps:Write down the equation with the corresponding
enthalpies of formation underneath:
C3H8(g) + 5O2(g)-------- 3CO2(g) + 4H2O(g)(-105) 0 3(-394) 4(-286)
Note: The standard enthalpies of formation are given in per mole , hence, they should be multiplied by the numbers of moles in the balance equation .
∆Hѳreaction = Σ∆Hѳf (Products) - Σ∆Hѳf (Reactants)
∆Hѳreaction = 3(-394) + 4(-286) -(-105)
= -2221 KJ mol-1
Thermochemical Equations
Balanced chemical equation for a reaction including the enthalpy of the reaction shown immediately after the equation. In a thermochemical equation, the coefficients represent moles and can therefore be fractional. The following is an example
IB Data booklet > -227 kj mol -1
Ethanol (C2H5OH) is made from the elements (C (Graphite)) and hydrogen (H2(g)) and oxygen (O2(g))
__C (graphite) + __H2 (g) +___O2(g)-----------> C2H5OH(I) ∆H=227kj mol -1
Balance the C, H and 0
2C (graphite) + 3H2 (g) +1/2 O2(g)-------------- C2H5OH(I) ∆H=227 kj mol -1
Questions!
1 .Use the table of standard enthalpies of formation at 25°C to calculate enthalpy change for the reaction
4NH3(g) + 5O2(g) → 6H2O(g) + 4NO(g)
2 .Write the thermodynamically equation for the standard enthalpy of formation of propanone enthalpy changeCH3COCH3
Answers!
1. –1031.76 kJ mol–1
2. 3C (Graphite) + 3H2(g) + 1/2O2(g)-----------CH3COCH3
Standard enthalpy change of Combustion
What is standard enthalpy change of combustion?
• The standard enthalpy of combustion is the enthalpy change that occurs when one mole of substance burns completely under the standard conditions of 25 and 1 atm.℃
Eg: C6H14(l) + 9O2(g) 6CO2(g) + 7H2O(l)
The standard enthalpy of combustion is always negative
Exercise!Write down the enthalpy of combustion equations for
the following reactions!• Methane
CH4 (g)+ 2O2(g) CO2(g) + 2H2O(l)
• EthanolC2H5OH(l) + 3O2(g) CO2(g) + 2H2O(l)
• PropaneC3H8(g)+ 5O2(g) 3CO2(g) + 4H2O(l)
Calculating standard enthalpy change
ΔHѳreaction
ΔHѳc(products)ΔHѳ
c(reactants)
ProductsReactants
Combustion Products
ΣΔHѳc(reactants) = ΣΔHѳ(products) + ΔH
ΔH = ΣΔHѳc(reactants) - ΣΔHѳ
c(products)
Question!
May 2010 Paper 1 TZ 2B
Question!• Give an equation for the formation of glucose.6C(graphite)+ 6H2 (g) + 3O2(g) C6H12O6(s)
• Calculate the enthalpy of formation of glucoseC: ΔHѳ
= -394 Kjmol-1 H2:ΔHѳ = -286 Kjmol-1
C6H12O6: ΔHѳ = -2803 Kjmol-1
ΔH = ΣΔHѳc(reactants) - ΔHѳ
c(products)
ΔH = ( 6(-394) + 6(-286) + 3(0) ) - (-2803) = -1277 Kjmol-1
Question!
Calculate the enthalpy change for the following reaction!C(s, graphite) C(s, diamond)
C(s, graphite) + O2(g) CO2(g) ΔHѳ = -393 Kjmol-1
C(s, diamond) + O2(g) CO2(g) ΔHѳ = -395 Kjmol-1
Solution:C(s, graphite) + O2(g) C(s, diamond) + O2(g)
CO2(g)
ΔHѳ
-395 Kjmol-1-393 Kjmol-1
-393 Kjmol-1 = -395 Kjmol-1 + ΔHѳ
ΔH = +2 Kjmol-1
Question
May 2008 Paper 1 TZ 1A
Question
Nov 2007 Paper 1 D
Comparison
ΔHѳreaction
ΔHѳc(products)
ΔHѳc(reactants)
ProductsReactants
Combustion Products
Standard enthalpy of combustion Standard enthalpy of formation
ΔH = ΣΔHѳc(reactants) - ΔHѳ
c(products)
ΔHѳreaction
ΔHѳf(products)
ΔHѳf(reactants)
ProductsReactants
Elements
ΔH = ΣΔHѳf(products) - ΔHѳ
f(reactants)
Its not CPR in chem! Its CRP! Think First Price
Question!
May 2010 Paper 1 TZ 2A
Questions!
May 2010 Paper 1 TZ1C
May 2010 Paper 1 TZ1A
Question!
Nov 2009 Paper 1 TZ1C
Answers to all MCQ questions is the last letter in the identification of the paper from which the question was taken! :)
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