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OCR A Chemistry A level H432 Year 2 summary notes

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Module 5: Physical chemistry & transition elements

Chapter 18: Rates of reactions
Orders, rate equations and rate constants
Rate of reaction
𝑞𝑢𝑎𝑛𝑡𝑖𝑡𝑦 𝑟𝑒𝑎𝑐𝑡𝑒𝑑/𝑝𝑟𝑜𝑑𝑢𝑐𝑒𝑑 𝑐ℎ𝑎𝑛𝑔𝑒 𝑖𝑛 𝑐𝑜𝑛𝑐𝑒𝑛𝑡𝑟𝑎𝑡𝑖𝑜𝑛
●​ 𝑟𝑎𝑡𝑒 𝑜𝑓 𝑟𝑒𝑎𝑐𝑡𝑖𝑜𝑛 = 𝑡𝑖𝑚𝑒
= 𝑡𝑖𝑚𝑒
●​ In concentration, units of rate of reaction is mol dm-3 s-1
●​ Notation: reaction A -> [A] (concentration of A)
Order of reaction
●​ Changing concentration proportionally changes rate of reaction
●​ rate ∝ [A]n - power is order of reaction for that reactant
●​ Different reactants can have different orders and each may affect rate in different ways
●​ Zero order:
○​ rate ∝ [A]0 so -x graph for conc-time graph
○​ Concentration of reactant has no effect on rate - x0 = 1
●​ First order:
○​ rate ∝ [A]1 so 1/x graph for conc-time graph
○​ Concentration of reactant has linear - x1 = x
●​ Second order:
○​ rate ∝ [A]2 so 1/x2 graph for conc-time graph
○​ Concentration of reactant is quadratic - x2
Rate equation and rate constant
●​ Gives relationship between concentrations of reactants and reaction rate
𝑚 𝑛
●​ Rate equation: 𝑟𝑎𝑡𝑒 𝑜𝑓 𝑟𝑒𝑎𝑐𝑡𝑖𝑜𝑛 = 𝑘[𝐴] [𝐵]
●​ Overall order = m + n
●​ Rate constant k: proportionality constant - number that converts between
rate of reaction and concentration and orders
●​ Units of k found by rearranging equation to make k subject then
cancelling out units

Concentration-time graphs
Monitoring rate continuously
●​ Concentration-time graphs can be plotted from continuous measurements taken during
course of reaction (continuous monitoring)
●​ So far, we have learnt to monitor by gas collection or by mass loss - not all reactions have gas
produced
Monitoring with colorimeter
●​ Reaction may change colour as reactants react
●​ In colorimeter, wavelength of light passing through coloured solution
controlled using filter then amount of light absorbed by solution is
measured
●​ Filter chosen such that it is complementary colour to colour being absorbed by reaction
Concentration-time graphs
●​ Gradient of concentration-time graph is rate of reaction
●​ Order with respect to reactant can be deduced from shape of
concentration-time graph
●​ Zero order: straight line with negative gradient as reaction rate doesn’t change at all during
reaction, gradient = k

, ●​ First order: downward curve with decreasing gradient (reaction is slowing), half-life constant
and k can be found using this
●​ Second order: steeper than first order but tailing off more slowly
Half life
●​ Half life t1/2: time taken for half of reactant to be used up - exponential decay
𝑙𝑛 2 𝑙𝑛 2
●​ 𝑘 = ℎ𝑎𝑙𝑓 𝑙𝑖𝑓𝑒
(𝑘 = 𝑡1/2
)
●​ Zero order has decreasing half life, first order has constant, second order has increasing

Rate-concentration graphs and initial rates
Rate-concentration graphs
●​ Can be plotted from measurements of rate of reaction at different concentrations
●​ Offer direct link between rate and concentration in rate equation
●​ Zero order: rate = k so y-intercept = k
●​ First order: rate ∝ k[A] so gradient = k
●​ Second order: rate ∝ k[A]2 so have to draw rate-concentration2 graph to get gradient k
Initial rates method
●​ Initial rate: instantaneous rate at start of reaction when t = 0 - found by gradient of tangent at t
= 0 on concentration-time graph
●​ Clock reaction: time from start of experiment is measured for visual change to be observed
●​ Provided no significant change in rate during this time, can be assumed average rate of
reaction = initial rate = 1/t
●​ Iodine clock:
○​ Aqueous iodine is orange-brown
○​ Starch usually added as it forms intense dark blue-black coloured complex
○​ Time from start of reaction and appearance of colour can be measured
●​ Accuracy:
○​ Longer time = lower value than actual value as gradient gets less steep
○​ Reasonably accurate provided <15% of reaction has occurred

Rate-determining step
Multi-step reactions
●​ Reaction mechanism: series of steps that make up overall reaction
●​ Rate-determining step: slowest step in sequence
●​ Rate equation only includes reacting species involved in rate-determining step
●​ Orders in rate equation match number of species involved in rate-determining step
●​ Rate-determining step provides important evidence in supporting or rejecting proposed
reaction mechanism
Examples:


●​


●​

Rate constants and temperature
Temperature
●​ As temperature increases, rate increases and k will increase
●​ Usually every 10oC rise doubles rate constant so doubles rate of reaction
●​ Increasing temperature shifts Boltzmann distribution to right, increasing proportion of particles
that exceed activation energy Ea

, ●​ As temperature increases, particles move faster and collide more frequently - relatively small
increase compared to shift in Boltzmann distribution
Arrhenius equation
−𝐸𝑎

●​ 𝑘 = 𝐴𝑒 𝑅𝑇 - A: pre-exponential factor (frequency factor), R: gas constant, T: temperature
(kelvin), must be in joules not kilojoules
●​ Shows relationship between temperature and rate constant
●​ Exponential factor represents proportion of particles that exceed activation energy and have
sufficient energy for reaction to take place
●​ Pre-exponential term A: frequency of collisions with correct orientation which has negligible
increase with small temperature increases
Taking logs of Arrhenius
𝐸𝑎 𝐸𝑎 1
●​ 𝑙𝑛 𝑘 =− 𝑅𝑇
+ 𝑙𝑛 𝐴, where 𝑙𝑛 𝑘 = 𝑦, − 𝑅
= 𝑚, 𝑇
= 𝑥, 𝑙𝑛 𝐴 = 𝑐
●​ Used to find A and Ea



Chapter 19: Equilibrium
Equilibrium constant Kc
Kc
●​ Equilibrium constant for equilibrium system in terms of equilibrium concentrations of species
present at equilibrium
𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜
[𝑝𝑟𝑜𝑑𝑢𝑐𝑡 𝐴] [𝑝𝑟𝑜𝑑𝑢𝑐𝑡 𝐵]
●​ 𝐾𝑐 = 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜
[𝑟𝑒𝑎𝑐𝑡𝑎𝑛𝑡 𝐴] [𝑟𝑒𝑎𝑐𝑡𝑎𝑛𝑡 𝐵]
●​ Units found by cancelling out units from top and bottom
Equilibria
●​ Homogeneous: all species have same state
●​ Heterogeneous: not all species have same state - only include (g) or (aq) in Kc calculation
Calculating Kc example:




●​

Equilibrium constant Kp
Kp
●​ Easier to use pressure than concentration in gases
●​ Hence Kp instead of Kc - both are still proportional to each other
𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜
𝑝(𝑝𝑟𝑜𝑑𝑢𝑐𝑡 𝐴) 𝑝(𝑝𝑟𝑜𝑑𝑢𝑐𝑡 𝐵)
●​ 𝐾𝑝 = 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜 𝑚𝑜𝑙𝑒 𝑟𝑎𝑡𝑖𝑜
𝑝(𝑟𝑒𝑎𝑐𝑡𝑎𝑛𝑡 𝐴) 𝑝(𝑟𝑒𝑎𝑐𝑡𝑎𝑛𝑡 𝐵)
●​ Units can be Pa, kPa or atm but must be same for all
Mole fractions
𝑛𝑢𝑚𝑏𝑒𝑟 𝑜𝑓 𝑚𝑜𝑙𝑒𝑠 𝑜𝑓 𝐴
●​ 𝑚𝑜𝑙𝑒 𝑓𝑟𝑎𝑐𝑡𝑖𝑜𝑛 𝑥(𝐴) = 𝑡𝑜𝑡𝑎𝑙 𝑛𝑢𝑚𝑏𝑒𝑟 𝑜𝑓 𝑚𝑜𝑙𝑒𝑠 𝑖𝑛 𝑔𝑎𝑠 𝑚𝑖𝑥𝑡𝑢𝑟𝑒
●​ Sum of mole fractions = 1
Partial pressure
●​ Contribution gas makes towards total pressure
●​ 𝑝𝑎𝑟𝑡𝑖𝑎𝑙 𝑝𝑟𝑒𝑠𝑠𝑢𝑟𝑒 = 𝑚𝑜𝑙𝑒 𝑓𝑟𝑎𝑐𝑡𝑖𝑜𝑛 𝑜𝑓 𝐴 × 𝑡𝑜𝑡𝑎𝑙 𝑝𝑟𝑒𝑠𝑠𝑢𝑟𝑒 (𝑝(𝐴) = 𝑥(𝐴) × 𝑃)
●​ Sum of partial pressures = total pressure

Controlling equilibrium position
Equilibrium constant
●​ K < 1: equilibrium in favour of reactants

, ●​ K = 1: equilibrium halfway between reactants and products
●​ K > 1: equilibrium in favour of products
●​ At set temperature, K is constant and doesn’t change despite modifications to concentration,
pressure or presence of catalyst - only temperature can change K
Temperature
●​ Depends on whether forward reaction is exothermic or endothermic
●​ Exothermic reactions:
○​ Equilibrium constant decreases with increasing temperature, shifting equilibrium
position to left and decreasing equilibrium yield of products
○​ This is because Kp decreases as temperature increases so partial pressure of
products must decrease while reactants must increase, shifting equilibrium to left
●​ Endothermic reactions:
○​ Equilibrium constant increases with increasing temperature, shifting equilibrium
position to right and increasing equilibrium yield of products
○​ This is because Kp increases as temperature increases so partial pressure of
products must increase while reactants must decrease, shifting equilibrium to right
●​ Same logic with Kc - instead of partial pressures, concentrations are changed
Concentration and pressure
●​ Kc doesn’t change by concentration or pressure
●​ Changes in concentration and pressure shift equilibrium position to match Kc or Kp
●​ Increase in concentration of reactants shifts equilibrium position to right, decreasing
concentration of reactants and increasing concentration of products
●​ Increase in pressure shifts equilibrium position to side with fewer moles
Catalysts
●​ Affect rate of reaction but not position of equilibrium
●​ Speeds up forward and reverse reactions by same factor - equilibrium reached faster



Chapter 20: Acids, bases and pH
Bronsted-Lowry acids and bases
Acid and base
●​ Bronsted-Lowry acid: proton donor
●​ Bronsted-Lowry base: proton acceptor
Conjugate acid-base pairs
●​ Contains 2 species that can be interconverted by transfer of proton
+ −
●​ Example: 𝐻𝐶𝑙 ⇌ 𝐻 + 𝐶𝑙 (equilibrium arrow despite HCl strong acid so equilibrium to right)
○​ In forward direction, HCl releases proton to form its conjugate base Cl-
○​ In reverse direction, Cl- accepts proton to form its conjugate acid HCl
+ −
●​ 𝐻 + 𝑂𝐻 ⇌ 𝐻2𝑂: OH- is a base (accepts H+) while H2O is an acid (donates H+)
+ −
●​ 𝐻𝐶𝑙 + 𝐻2𝑂 ⇌ 𝐻3𝑂 + 𝐶𝑙 : H2O, Cl- is a base while HCl, H3O+ is an acid
●​ H3O+ (hydronium) active acid ingredient in any aqueous acid
Monobasic, dibasic and tribasic acids
●​ Number of hydrogen ions in acid than can be replaced per molecule in acid-base reaction
●​ Mono: 1, di: 2, tri: 3
H+ and acid reactions
●​ H+ is active species of acid in acid reactions
●​ Hydrogen in acid is replaced by metal or ammonium ions to form salt
●​ Salt: chemical compound of positively and negatively charged ions
●​ Salt naming: alkali acid
●​ Ionic equation will show neutralisation of H+ ions by OH- ions to form neutral H2O

Índice general

  1. 01 Module 5: Physical chemistry & transition elements 1
    1. Chapter 18: Rates of reactions 1
  2. 02 Orders, rate equations and rate constants 1
    1. Rate of reaction 1
    2. Order of reaction 1
    3. Rate equation and rate constant 1
  3. 03 Concentration-time graphs 1
    1. Monitoring rate continuously 1
    2. Monitoring with colorimeter 1
    3. Concentration-time graphs 1
    4. Half life 2
  4. 04 Rate-concentration graphs and initial rates 2
    1. Rate-concentration graphs 2
    2. Initial rates method 2
  5. 05 Rate-determining step 2
    1. Multi-step reactions 2
    2. Examples: 2
  6. 06 Rate constants and temperature 2
    1. Temperature 2
    2. Arrhenius equation 3
    3. Taking logs of Arrhenius 3
    4. Chapter 19: Equilibrium 3
  7. 07 Equilibrium constant Kc 3
    1. Kc 3
    2. Equilibria 3
    3. Calculating Kc example: 3
  8. 08 Equilibrium constant Kp 3
    1. Kp 3
    2. Mole fractions 3
    3. Partial pressure 3
  9. 09 Controlling equilibrium position 3
    1. Equilibrium constant 3
    2. Temperature 4
    3. Concentration and pressure 4
    4. Catalysts 4
    5. Chapter 20: Acids, bases and pH 4
  10. 10 Bronsted-Lowry acids and bases 4
    1. Acid and base 4
    2. Conjugate acid-base pairs 4
    3. Monobasic, dibasic and tribasic acids 4
    4. H+ and acid reactions 4
    5. pH scale 5
  11. 11 Acid dissociation constant Ka 5
    1. Strong and weak acids 5
    2. Ka 5
  12. 12 pH and strong bases 5
    1. Ionisation of water 5
    2. pH of strong bases 5
    3. Chapter 21: Buffers and neutralisation 6
  13. 13 Buffer solutions 6
    1. Buffer solution 6
    2. Preparing weak acid buffer solutions 6
    3. Action of buffer solution 6
    4. pH and buffer solutions 6
  14. 14 Buffer solutions in body 6
    1. Blood pH 6
    2. Buffer system 7
    3. Buffer solution example 7
  15. 15 Neutralisation 7
    1. pH titration curve 7
    2. Acid-base indicators 7
    3. Indicator colour changes 7
    4. Choosing indicator 7
    5. Chapter 22: Enthalpy and entropy 7
  16. 16 Lattice enthalpy 7
    1. Lattice enthalpy 7
    2. Born-Haber cycle 8
    3. Key enthalpy changes 8
  17. 17 Enthalpy changes in solution 8
    1. Enthalpy change of solution 8
    2. Dissolving process 8
  18. 18 Factors affecting enthalpies 9
    1. Lattice enthalpy 9
    2. Hydration enthalpy 9
    3. Predicting solubility 9
  19. 19 Entropy 9
    1. Entropy 9
    2. Predicting entropy changes 9
    3. Standard entropies 9
  20. 20 Free energy 9
    1. Free energy 9
    2. Condition for feasibility 10
    3. Limitations of feasibility predictions 10
    4. Chapter 23: Redox and electrode potentials 10
  21. 21 Redox reactions 10
    1. Redox equations 10
    2. Predicting products 10
  22. 22 Redox titrations 11
    1. Manganate(VII) 11
    2. Iodine/thiosulfate 11
  23. 23 Electrode potentials 11
    1. Half cells 11
    2. Electrode potentials 11
    3. Standard electrode potential E⊖ 11
    4. Measuring standard electrode potential 12
    5. Cell potential 12
  24. 24 Predictions using E⊖ values 12
    1. Oxidation and reduction 12
    2. Limitations of predictions 12
  25. 25 Storage and fuel cells 12
    1. Primary cells 12
    2. Secondary cells 12
    3. Chapter 24: Transition elements 13
  26. 26 D-block elements 13
    1. D-block elements 13
    2. Electronic configuration 13
    3. Properties of transition metals 13
  27. 27 Formation and shapes of complex ions 13
    1. Complex ions 13
    2. Ligands 14
    3. Shape of complex ions 14
  28. 28 Stereoisomerism in complex ions 14
    1. Stereoisomers 14
    2. Cis-trans isomerism 14
    3. Optical isomerism 14
    4. Cis-platin in medicine 14
  29. 29 Ligand substitution and precipitation 15
    1. Aqueous copper(II) ion reactions 15
    2. Aqueous chromium(III) ion reactions 15
    3. Haemoglobin 15
    4. Precipitation reactions 15
  30. 30 Redox and qualitative analysis 16
    1. Iron(II) and iron(III) 16
    2. Dichromate(VI) and chromium(III) 16
    3. Copper(II) and copper(I) 16
    4. Module 6: Organic chemistry and analysis 17
    5. Chapter 25: Aromatic compounds 17
    6. Benzene 17
    7. Derivatives 17
    8. Kekule model 17
    9. Delocalised model 17
    10. Naming 17
  31. 31 Benzene electrophilic substitution reactions 18
    1. Reactivity of benzene 18
    2. Nitration 18
    3. Halogenation 18
    4. Alkylation 18
    5. Acylation 18
    6. Reactivity vs alkenes 18
  32. 32 Phenol chemistry 19
    1. Phenols and phenol 19
    2. Phenol as weak acid 19
  33. 33 Phenol electrophilic substitution reactions 19
    1. Bromination 19
    2. Nitration 19
    3. Reactivity vs benzene 19
  34. 34 Directing groups 19
    1. Further substitution 19
    2. Activation and deactivation 19
    3. Directing effect 20
    4. Chapter 26: Carbonyls and carboxylic acids 20
  35. 35 Carbonyl compounds 20
    1. Aldehydes and ketones 20
    2. Aldehyde oxidation 20
    3. C=O bond 20
    4. Carbonyls + NaBH4 20
    5. Carbonyls + HCN 21
  36. 36 Identifying aldehydes and ketones 21
    1. Detecting carbonyls 21
    2. Detecting aldehyde from ketone 21
  37. 37 Carboxylic acids 22
    1. Carboxyl group 22
    2. Solubility 22
  38. 38 Carboxylic acid derivatives 22
  39. 39 Esters 22
    1. Esterification 22
    2. Ester hydrolysis 23
  40. 40 Acyl chlorides 23
    1. Formation 23
    2. Reactions 23
  41. 41 Acid anhydrides 24
    1. Reactions 24
    2. Chapter 27: Amines, amino acids and polymers 24
  42. 42 Amines 24
    1. Amines 24
    2. Classification 24
    3. Naming 24
    4. Reactions 24
    5. Preparation of aliphatic amines 24
  43. 43 Amino acids, amides, chirality 25
    1. Amino acids 25
    2. Reactions 25
    3. Amides 25
    4. Optical isomerism 25
  44. 44 Condensation polymers 25
    1. Condensation polymerisation 25
    2. Polyesters 25
    3. Polyamides 26
    4. Hydrolysing 26
    5. Chapter 28: Organic synthesis 26
  45. 45 Carbon-carbon bond formation 26
    1. Nitriles 26
    2. Benzene rings 27
  46. 46 Further practical techniques 27
    1. Filtration under reduced pressure 27
    2. Crystallisation 27
    3. Melting point determination 27
  47. 47 Synthetic routes 28
    1. Organic synthesis 28
    2. Benzene synthesis 28
    3. Phenol synthesis 29
    4. Organic synthesis steps 29
    5. Chapter 29: Chromatography and spectroscopy 29
  48. 48 Chromatography 29
    1. Purpose 29
    2. TLC 29
    3. Gas chromatography 29
    4. ●​Concentration of components: 30
  49. 49 Organic qualitative analysis 30
  50. 50 NMR spectroscopy 30
    1. Nuclear magnetic resonance 30
    2. Nuclear spin 30
    3. Resonance 30
    4. NMR spectrometer 30
    5. Chemical shift and TMS 31
    6. Running spectrum 31
    7. Deuterated solvents 31
  51. 51 Carbon-13 NMR spectroscopy 31
    1. Carbon-13 NMR spectra 31
    2. Example NMR spectra 31
    3. Interpreting spectra example 32
  52. 52 Proton NMR spectroscopy 32
    1. Equivalent, non-equivalent protons 32
    2. Example NMR spectra 32
    3. Spin-spin coupling 32
    4. N+1 rule 32
    5. Aromatic protons 32
    6. Hydroxyl and amino protons 32
    7. Proton exchange 33
  53. 53 Interpreting NMR spectra 33
    1. Interpreting proton NMR spectra 33
    2. Predicting proton NMR spectra 33
  54. 54 Structure determination 33

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Editorial: juli 2015 ISBN: 9780198351979 Edición: 1

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Chapter 18 to 29
Subido en
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