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AN INTRODUCTION TO CHEMICALEQUILIBRIUM CONTENTS Concentration change during a chemical reaction Dynamic equilibrium Equilibrium constants Le Chatelier’s.

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Presentation on theme: "AN INTRODUCTION TO CHEMICALEQUILIBRIUM CONTENTS Concentration change during a chemical reaction Dynamic equilibrium Equilibrium constants Le Chatelier’s."— Presentation transcript:

1 AN INTRODUCTION TO CHEMICALEQUILIBRIUM CONTENTS Concentration change during a chemical reaction Dynamic equilibrium Equilibrium constants Le Chatelier’s Principle Haber process Check list

2 In an ordinary reaction; all reactants end up as products; there is 100% conversion CONCENTRATION CHANGE IN A REACTION As the rate of reaction is dependant on the concentration of reactants... the forward reaction starts off fast but slows as the reactants get less concentrated FASTEST AT THE START SLOWS DOWN AS REACTANTS ARE USED UP TOTAL CONVERSION TO PRODUCTS THE STEEPER THE GRADIENT, THE FASTER THE REACTION

3 In an ordinary reaction; all reactants end up as products; there is 100% conversion CONCENTRATION CHANGE IN A REACTION As the rate of reaction is dependant on the concentration of reactants... the forward reaction starts off fast but slows as the reactants get less concentrated FASTEST AT THE START SLOWS DOWN AS REACTANTS ARE USED UP TOTAL CONVERSION TO PRODUCTS THE STEEPER THE GRADIENT, THE FASTER THE REACTION

4 In an ordinary reaction; all reactants end up as products; there is 100% conversion CONCENTRATION CHANGE IN A REACTION As the rate of reaction is dependant on the concentration of reactants... the forward reaction starts off fast but slows as the reactants get less concentrated FASTEST AT THE START SLOWS DOWN AS REACTANTS ARE USED UP TOTAL CONVERSION TO PRODUCTS THE STEEPER THE GRADIENT, THE FASTER THE REACTION

5 Initially, there is no backward reaction but, as products form, it speeds up and provided the temperature remains constant there will come a time when the backward and forward reactions are equal and opposite; the reaction has reached equilibrium. EQUILIBRIUM REACTIONS In an equilibrium reaction, not all the reactants end up as products; there is not a 100% conversion. BUT IT DOESN’T MEAN THE REACTION IS STUCK IN THE MIDDLE FASTEST AT THE START NO BACKWARD REACTION FORWARD REACTION SLOWS DOWN AS REACTANTS ARE USED UP BACKWARD REACTION STARTS TO INCREASE AT EQUILIBRIUM THE BACKWARD AND FORWARD REACTIONS ARE EQUAL AND OPPOSITE

6 Initially, there is no backward reaction but, as products form, it speeds up and provided the temperature remains constant there will come a time when the backward and forward reactions are equal and opposite; the reaction has reached equilibrium. EQUILIBRIUM REACTIONS In an equilibrium reaction, not all the reactants end up as products; there is not a 100% conversion. BUT IT DOESN’T MEAN THE REACTION IS STUCK IN THE MIDDLE FASTEST AT THE START NO BACKWARD REACTION FORWARD REACTION SLOWS DOWN AS REACTANTS ARE USED UP BACKWARD REACTION STARTS TO INCREASE AT EQUILIBRIUM THE BACKWARD AND FORWARD REACTIONS ARE EQUAL AND OPPOSITE

7 Initially, there is no backward reaction but, as products form, it speeds up and provided the temperature remains constant there will come a time when the backward and forward reactions are equal and opposite; the reaction has reached equilibrium. EQUILIBRIUM REACTIONS In an equilibrium reaction, not all the reactants end up as products; there is not a 100% conversion. BUT IT DOESN’T MEAN THE REACTION IS STUCK IN THE MIDDLE FASTEST AT THE START NO BACKWARD REACTION FORWARD REACTION SLOWS DOWN AS REACTANTS ARE USED UP BACKWARD REACTION STARTS TO INCREASE AT EQUILIBRIUM THE BACKWARD AND FORWARD REACTIONS ARE EQUAL AND OPPOSITE

8 Initially, there is no backward reaction but, as products form, it speeds up and provided the temperature remains constant there will come a time when the backward and forward reactions are equal and opposite; the reaction has reached equilibrium. EQUILIBRIUM REACTIONS In an equilibrium reaction, not all the reactants end up as products; there is not a 100% conversion. BUT IT DOESN’T MEAN THE REACTION IS STUCK IN THE MIDDLE FASTEST AT THE START NO BACKWARD REACTION FORWARD REACTION SLOWS DOWN AS REACTANTS ARE USED UP BACKWARD REACTION STARTS TO INCREASE AT EQUILIBRIUM THE BACKWARD AND FORWARD REACTIONS ARE EQUAL AND OPPOSITE

9 IMPORTANT REMINDERS a reversible chemical reaction is a dynamic process everything may appear stationary but the reactions are moving both ways the position of equilibrium can be varied by changing certain conditions Trying to get up a “down” escalator gives an excellent idea of a non-chemical situation involving dynamic equilibrium. DYNAMIC EQUILIBRIUM

10 IMPORTANT REMINDERS a reversible chemical reaction is a dynamic process everything may appear stationary but the reactions are moving both ways the position of equilibrium can be varied by changing certain conditions Trying to get up a “down” escalator gives an excellent idea of a non-chemical situation involving dynamic equilibrium. Summary When a chemical equilibrium is established... both the reactants and the products are present at all times the equilibrium can be approached from either side the reaction is dynamic - it is moving forwards and backwards the concentrations of reactants and products remain constant DYNAMIC EQUILIBRIUM

11 Simply states “If the concentrations of all the substances present at equilibrium are raised to the power of the number of moles they appear in the equation, the product of the concentrations of the products divided by the product of the concentrations of the reactants is a constant, provided the temperature remains constant” There are several forms of the constant; all vary with temperature. K c the equilibrium values are expressed as concentrations of mol dm -3 K p the equilibrium values are expressed as partial pressures The partial pressure expression can be used for reactions involving gases THE EQUILIBRIUM LAW

12 for an equilibrium reaction of the form... aA + bB cC + dD then (at constant temperature) [C] c. [D] d = a constant, (K c ) [A] a. [B] b where [ ] denotes the equilibrium concentration in mol dm -3 K c is known as the Equilibrium Constant THE EQUILIBRIUM CONSTANT K c

13 for an equilibrium reaction of the form... aA + bB cC + dD then (at constant temperature) [C] c. [D] d = a constant, (K c ) [A] a. [B] b where [ ] denotes the equilibrium concentration in mol dm -3 K c is known as the Equilibrium Constant THE EQUILIBRIUM CONSTANT K c Example Fe 3+ (aq) + NCS¯(aq) FeNCS 2+ (aq) K c = [ FeNCS 2+ ]with units of dm 3 mol -1 [ Fe 3+ ] [ NCS¯ ]

14 for an equilibrium reaction of the form... aA + bB cC + dD then (at constant temperature) [C] c. [D] d = a constant, (K c ) [A] a. [B] b where [ ] denotes the equilibrium concentration in mol dm -3 K c is known as the Equilibrium Constant THE EQUILIBRIUM CONSTANT K c VALUE OF K c AFFECTED bya change of temperature NOT AFFECTED bya change in concentration of reactants or products a change of pressure adding a catalyst

15 ”When a change is applied to a system in dynamic equilibrium, the system reacts in such a way as to oppose the effect of the change.” Everyday example A rose bush grows with increased vigour after it has been pruned. Chemistry example If you do something to a reaction that is in a state of equilibrium, the equilibrium position will change to oppose what you have just done LE CHATELIER’S PRINCIPLE

16 CONCENTRATION FACTORS AFFECTING THE POSITION OF EQUILIBRIUM The equilibrium constant is not affected by a change in concentration at constant temperature. To maintain the constant, the composition of the equilibrium mixture changes. If you increase the concentration of a substance, the value of K c will theoretically be affected. As it must remain constant at a particular temperature, the concentrations of the other species change to keep the constant the same.

17 CONCENTRATION example CH 3 CH 2 OH(l) + CH 3 COOH(l) CH 3 COOC 2 H 5 (l) + H 2 O(l) the equilibrium constant K c = [CH 3 COOC 2 H 5 ] [H 2 O] = 4 (at 298K) [CH 3 CH 2 OH] [CH 3 COOH] FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

18 CONCENTRATION example CH 3 CH 2 OH(l) + CH 3 COOH(l) CH 3 COOC 2 H 5 (l) + H 2 O(l) the equilibrium constant K c = [CH 3 COOC 2 H 5 ] [H 2 O] = 4 (at 298K) [CH 3 CH 2 OH] [CH 3 COOH] increasing [CH 3 CH 2 OH]- will make the bottom line larger so K c will be smaller - to keep it constant, some CH 3 CH 2 OH reacts with CH 3 COOH - this reduces the value of the bottom line and increases the top - eventually the value of the constant will be restored FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

19 CONCENTRATION example CH 3 CH 2 OH(l) + CH 3 COOH(l) CH 3 COOC 2 H 5 (l) + H 2 O(l) the equilibrium constant K c = [CH 3 COOC 2 H 5 ] [H 2 O] = 4 (at 298K) [CH 3 CH 2 OH] [CH 3 COOH] increasing [CH 3 CH 2 OH]- will make the bottom line larger so K c will be smaller - to keep it constant, some CH 3 CH 2 OH reacts with CH 3 COOH - this reduces the value of the bottom line and increases the top - eventually the value of the constant will be restored decreasing [H 2 O]- will make the top line smaller - some CH 3 CH 2 OH reacts with CH 3 COOH to replace the H 2 O - more CH 3 COOC 2 H 5 is also produced - this reduces the value of the bottom line and increases the top FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

20 CONCENTRATION example CH 3 CH 2 OH(l) + CH 3 COOH(l) CH 3 COOC 2 H 5 (l) + H 2 O(l) the equilibrium constant K c = [CH 3 COOC 2 H 5 ] [H 2 O] = 4 (at 298K) [CH 3 CH 2 OH] [CH 3 COOH] increasing [CH 3 CH 2 OH]- will make the bottom line larger so K c will be smaller - to keep it constant, some CH 3 CH 2 OH reacts with CH 3 COOH - this reduces the value of the bottom line and increases the top - eventually the value of the constant will be restored decreasing [H 2 O]- will make the top line smaller - some CH 3 CH 2 OH reacts with CH 3 COOH to replace the H 2 O - more CH 3 COOC 2 H 5 is also produced - this reduces the value of the bottom line and increases the top FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

21 SUMMARY REACTANTS PRODUCTS INCREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE RIGHT THE EFFECT OF CHANGING THE CONCENTRATION ON THE POSITION OF EQUILIBRIUM DECREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE LEFT INCREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE LEFT DECREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE RIGHT FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

22 Predict the effect of increasing the concentration of O 2 on the equilibrium position 2SO 2 (g) + O 2 (g) 2SO 3 (g) SUMMARY REACTANTS PRODUCTS INCREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE RIGHT THE EFFECT OF CHANGING THE CONCENTRATION ON THE POSITION OF EQUILIBRIUM DECREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE LEFT INCREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE LEFT DECREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE RIGHT Predict the effect of decreasing the concentration of SO 3 on the equilibrium position

23 FACTORS AFFECTING THE POSITION OF EQUILIBRIUM Predict the effect of increasing the concentration of O 2 on the equilibrium position 2SO 2 (g) + O 2 (g) 2SO 3 (g) EQUILIBRIUM MOVES TO RHS SUMMARY REACTANTS PRODUCTS INCREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE RIGHT THE EFFECT OF CHANGING THE CONCENTRATION ON THE POSITION OF EQUILIBRIUM DECREASE CONCENTRATION OF A REACTANTEQUILIBRIUM MOVES TO THE LEFT INCREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE LEFT DECREASE CONCENTRATION OF A PRODUCTEQUILIBRIUM MOVES TO THE RIGHT Predict the effect of decreasing the concentration of SO 3 on the equilibrium position EQUILIBRIUM MOVES TO RHS

24 PRESSURE When studying the effect of a change in pressure, we consider the number of gaseous molecules only. The more particles you have in a given volume, the greater the pressure they exert. If you apply a greater pressure they will become more crowded (i.e. they are under a greater stress). However, if the system can change it will move to the side with fewer gaseous molecules - it is less crowded. No change occurs when equal numbers of gaseous molecules appear on both sides. FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

25 PRESSURE When studying the effect of a change in pressure, we consider the number of gaseous molecules only. The more particles you have in a given volume, the greater the pressure they exert. If you apply a greater pressure they will become more crowded (i.e. they are under a greater stress). However, if the system can change it will move to the side with fewer gaseous molecules - it is less crowded. No change occurs when equal numbers of gaseous molecules appear on both sides. INCREASE PRESSUREMOVES TO THE SIDE WITH FEWER GASEOUS MOLECULES DECREASE PRESSUREMOVES TO THE SIDE WITH MORE GASEOUS MOLECULES THE EFFECT OF PRESSURE ON THE POSITION OF EQUILIBRIUM FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

26 PRESSURE When studying the effect of a change in pressure, we consider the number of gaseous molecules only. The more particles you have in a given volume, the greater the pressure they exert. If you apply a greater pressure they will become more crowded (i.e. they are under a greater stress). However, if the system can change it will move to the side with fewer gaseous molecules - it is less crowded. No change occurs when equal numbers of gaseous molecules appear on both sides. INCREASE PRESSUREMOVES TO THE SIDE WITH FEWER GASEOUS MOLECULES DECREASE PRESSUREMOVES TO THE SIDE WITH MORE GASEOUS MOLECULES THE EFFECT OF PRESSURE ON THE POSITION OF EQUILIBRIUM Predict the effect of an increase of pressure on the equilibrium position of.. 2SO 2 (g) + O 2 (g) 2SO 3 (g) H 2 (g) + CO 2 (g) CO(g) + H 2 O(g) FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

27 PRESSURE When studying the effect of a change in pressure, we consider the number of gaseous molecules only. The more particles you have in a given volume, the greater the pressure they exert. If you apply a greater pressure they will become more crowded (i.e. they are under a greater stress). However, if the system can change it will move to the side with fewer gaseous molecules - it is less crowded. No change occurs when equal numbers of gaseous molecules appear on both sides. INCREASE PRESSUREMOVES TO THE SIDE WITH FEWER GASEOUS MOLECULES DECREASE PRESSUREMOVES TO THE SIDE WITH MORE GASEOUS MOLECULES THE EFFECT OF PRESSURE ON THE POSITION OF EQUILIBRIUM Predict the effect of an increase of pressure on the equilibrium position of.. 2SO 2 (g) + O 2 (g) 2SO 3 (g) MOVES TO RHS :- fewer gaseous molecules H 2 (g) + CO 2 (g) CO(g) + H 2 O(g) NO CHANGE:- equal numbers on both sides FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

28 TEMPERATURE temperature is the only thing that can change the value of the equilibrium constant. altering the temperature affects the rate of both backward and forward reactions it alters the rates to different extents the equilibrium thus moves producing a new equilibrium constant. the direction of movement depends on the sign of the enthalpy change. FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

29 TEMPERATURE temperature is the only thing that can change the value of the equilibrium constant. altering the temperature affects the rate of both backward and forward reactions it alters the rates to different extents the equilibrium thus moves producing a new equilibrium constant. the direction of movement depends on the sign of the enthalpy change. REACTION TYPE  INCREASE TEMP DECREASE TEMP EXOTHERMIC - TO THE LEFTTO THE RIGHT ENDOTHERMIC+TO THE RIGHTTO THE LEFT FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

30 TEMPERATURE temperature is the only thing that can change the value of the equilibrium constant. altering the temperature affects the rate of both backward and forward reactions it alters the rates to different extents the equilibrium thus moves producing a new equilibrium constant. the direction of movement depends on the sign of the enthalpy change. REACTION TYPE  INCREASE TEMP DECREASE TEMP EXOTHERMIC - TO THE LEFTTO THE RIGHT ENDOTHERMIC+TO THE RIGHTTO THE LEFT Predict the effect of a temperature increase on the equilibrium position of... H 2 (g) + CO 2 (g) CO(g) + H 2 O(g)  = + 40 kJ mol -1 2SO 2 (g) + O 2 (g) 2SO 3 (g)  = - ive FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

31 TEMPERATURE temperature is the only thing that can change the value of the equilibrium constant. altering the temperature affects the rate of both backward and forward reactions it alters the rates to different extents the equilibrium thus moves producing a new equilibrium constant. the direction of movement depends on the sign of the enthalpy change. REACTION TYPE  INCREASE TEMP DECREASE TEMP EXOTHERMIC - TO THE LEFTTO THE RIGHT ENDOTHERMIC+TO THE RIGHTTO THE LEFT Predict the effect of a temperature increase on the equilibrium position of... H 2 (g) + CO 2 (g) CO(g) + H 2 O(g)  = + 40 kJ mol -1 moves to the RHS 2SO 2 (g) + O 2 (g) 2SO 3 (g)  = - ive moves to the LHS FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

32 CATALYSTS FACTORS AFFECTING THE POSITION OF EQUILIBRIUM EaEa MAXWELL-BOLTZMANN DISTRIBUTION OF MOLECULAR ENERGY EXTRA MOLECULES WITH SUFFICIENT ENERGY TO OVERCOME THE ENERGY BARRIER MOLECULAR ENERGY NUMBER OF MOLECUES WITH A PARTICULAR ENERGY Catalysts work by providing an alternative reaction pathway involving a lower activation energy.

33 CATALYSTS An increase in temperature is used to speed up chemical reactions but it can have an undesired effect when the reaction is reversible and exothermic. In this case you get to the equilibrium position quicker but with a reduced yield because the increased temperature moves the equilibrium to the left. In many industrial processes a compromise temperature is used (see Haber and Contact Processes). To reduce the problem one must look for a way of increasing the rate of a reaction without decreasing the yield i.e. with a catalyst. FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

34 CATALYSTS An increase in temperature is used to speed up chemical reactions but it can have an undesired effect when the reaction is reversible and exothermic. In this case you get to the equilibrium position quicker but with a reduced yield because the increased temperature moves the equilibrium to the left. In many industrial processes a compromise temperature is used (see Haber and Contact Processes). To reduce the problem one must look for a way of increasing the rate of a reaction without decreasing the yield i.e. with a catalyst. Adding a catalyst DOES NOT AFFECT THE POSITION OF EQUILIBRIUM. However, it does increase the rate of attainment of equilibrium. This is especially important in reversible, exothermic industrial reactions such as the Haber or Contact Processes where economic factors are paramount. FACTORS AFFECTING THE POSITION OF EQUILIBRIUM

35 N 2 (g) + 3H 2 (g) 2NH 3 (g) :  = - 92 kJ mol -1 ConditionsPressure20000 kPa (200 atmospheres) Temperature380-450°C Catalystiron HABER PROCESS

36 N 2 (g) + 3H 2 (g) 2NH 3 (g) :  = - 92 kJ mol -1 ConditionsPressure20000 kPa (200 atmospheres) Temperature380-450°C Catalystiron Equilibrium theory favours low temperature exothermic reaction - higher yield at lower temperature high pressure decrease in number of gaseous molecules HABER PROCESS

37 N 2 (g) + 3H 2 (g) 2NH 3 (g) :  = - 92 kJ mol -1 ConditionsPressure20000 kPa (200 atmospheres) Temperature380-450°C Catalystiron Equilibrium theory favours low temperature exothermic reaction - higher yield at lower temperature high pressure decrease in number of gaseous molecules Kinetic theory favours high temperature greater average energy + more frequent collisions high pressure more frequent collisions for gaseous molecules catalyst lower activation energy HABER PROCESS

38 N 2 (g) + 3H 2 (g) 2NH 3 (g) :  = - 92 kJ mol -1 ConditionsPressure20000 kPa (200 atmospheres) Temperature380-450°C Catalystiron Equilibrium theory favours low temperature exothermic reaction - higher yield at lower temperature high pressure decrease in number of gaseous molecules Kinetic theory favours high temperature greater average energy + more frequent collisions high pressure more frequent collisions for gaseous molecules catalyst lower activation energy Compromise conditions Which is better? A low yield in a shorter time or a high yield over a longer period. The conditions used are a compromise with the catalyst enabling the rate to be kept up, even at a lower temperature. HABER PROCESS

39 IMPORTANT USES OF AMMONIA AND ITS COMPOUNDS MAKING FERTILISERS80% of the ammonia produced goes to make fertilisers such as ammonium nitrate (NITRAM) and ammonium sulphate NH 3 + HNO 3 ——> NH 4 NO 3 2NH 3 + H 2 SO 4 ——> (NH 4 ) 2 SO 4 MAKING NITRIC ACIDammonia can be oxidised to nitric acid nitric acid is used to manufacture... fertilisers (ammonium nitrate) explosives (TNT) polyamide polymers (NYLON) HABER PROCESS

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