SlideShare ist ein Scribd-Unternehmen logo
1 von 25
2
CHEMICAL KINEMATICS
“the branch of physical
chemistry which deals with the
rate of chemical reactions and
the mechanism through which
they occur is called chemical
kinematics”
3
RATE CONSTANT
 A rate constant is a proportionality constant that
appears in a rate law. For example, k is the rate
constant in the rate law
d[A]/dt = k[A].
 Rate constants are independent of concentration
but depend on other factors, most notably
temperature.
Order Of Reaction
The sum of the powers
of concentration terms in rate equation is
known as order of reaction.
Consider a reaction mA+nB product
Rate eq (R)=k[A]m[B]n
Order = m + n
 This is the number of concentration terms that determine
the rate.
 Consider the reaction:
A + B C + D
 The rate of the reaction is proportional to the
concentration of A to the power of x, [A]x
 and also the rate may be proportional to the
concentration of B to the power of y, [B]y.
 The overall equation is,
Rate = k [A]x [B]y
 The overall order of reaction is x+y
Reaction Rate and Order
6
 Reaction rate is the velocity of reaction to convert the reactants into its
product.
 Reactions may be classified according to the order of reaction, which
is the number of reacting species whose concentration determines the
rate at which the reaction occurs.
 The most important orders of reaction are;
zero-order (breakdown rate is independent of the concentration of
any of the reactants),
first-order (reaction rate is determined by one concentration term)
and second-order (rate is determined by the concentrations of two
reacting species).
 The decomposition of many drugs can occur simultaneously by two
or more pathways, which complicates the determination of rate
constants.
TYPES OF ORDER OF REACTION
7
1. Zero order reaction
2. First order reaction
3. Second order reaction
4. Third order reaction & Higher
ZERO ORDER REACTION
8
 ‘’When the reaction rate is independent of concentration of the
reacting substance, it depends on the zero power of the reactant
and therefore is zero order reaction.’’
 In this type of reaction, the limiting factor is something other
than concentration, for example, solubility or absorption of light
in certain photochemical reactions.
Example:
 Loss of colour of multi-sulfa drug.
 Rate of The rate of decomposition can be described
mathematically as:
Rate of concentration decrease;
-dCx = K…………………(1)
dt
9
Integrating the equation respect to time from t=0 to t=t,
we get;
X = Kt + constant…………………(2)
Comparing this equation with y=m x + c, and
A plot of X Vs time results in straight line with slope equal to K.
The value of K indicate the amount of drug that is degraded per unit
time, and intercept of line at time zero is equal to constant in equation
(2).
concentration
time
Slope = k
10
 The unit of K is concentration time-1, with typical
units of mole L-1 s-1.
 Half-life is given by equation;
t1/2 = Co/2k
Examples: -
• Vitamin A acetate to anhydrous vitamin A.
• Photolysis of cefotaxime.
• Loss in color of multi sulfa product.
• Intravenous infusion, Drug released from TDDS.
FIRST ORDER REACTION
11
 ‘’When the reaction rate depends on the first power of
concentration of a single reactant,’’ it is considered to be first
order.
Example are
• Absorption, distribution, elimination rates.
• Microbial death kinetics.
 Thus the rate of reaction is directly proportional to the
concentration of reacting substance and can be expressed as
follows:
Rate of concentration decrease;
- dCX = KCx…………………………….(1)
dt
12
 When the reaction rate depends on the first power of concentration
of a single reactant, it is considered to be first order.
 If concentration of reactant X is ‘a’ at beginning of reaction
when t = 0, & if amount that has reacted after time t is denoted by x
then amount of X remaining at time t will be (a-x).
 Therefore,
- dCX = K (a-x) ………………..(2)
dt
dCX = -K dt …………………(3)
(a-x)
 Integrating equation between time limit 0 to t
a ∫a-x dCX = -K 0∫t dt
dt
ln (a-x) –ln a = -Kt
log (a-x) – log a = -Kt/2.303
log (a-x) = log a – Kt/2.303 ……………..(4)
 Equation (4) is like y = mx + c (linear relationship)
13
 If first order law is obeyed then a graph of log (a-x) v/s time t
will give straight line with slope of –K/2.303 and an intercept of
log a at t = 0.
 Rearranging equation (4) we have
K = 2.303 log (a/a-x) ………. (5)
t
SLOPE = -K
2.303log (a-x)
time
14
 Unit of K for first order is time-1 i.e. SI unit is (sec)-1 because
K is inversely proportional to t.
 The half-life t1/2 of a drug is the time required for 50% of drug
to degrade and can be calculated as follows:
t1/2 = 2.303 log C0 = 2.303 log 100
k C k 50
= 2.303 log 2 = 0.693
k k
therefore,
t1/2 = 0.693 ……………….. (7)
k
15
 In pharmaceutical field , the time required for 10% of the drug to
degrade is an important value to know, since it represents a
reasonable limit of degradation of active ingredients.
The t10% value can be calculated as
t10% = 0.104
k
or
t10% = 0.152 t1/2
Examples of first order reaction
 Thermal decomposition of N2O5
N2O5 N2O3+O2
 Hydrolysis of hydrogen
peroxide
H2O2 H2O +1/2O2
 Decomposition of Calcium
carbide
CaCo3 Cao + Co2
SECOND ORDER REACTION
 ‘’Rate of change in conc. of product and reactant is dependent on
second power of conc. of single reactant or to first powers of the
conc. of two reactants.’’
i.e. - dCX = K [X] [Y]-------------------------------------(1)
dt
or -dCX = K [X]2 ----------------------------------------(2)
dt
- dCX = K [X] [Y]
dt
 Here decrease in conc. of Y is similar to X. If conc. of X and Y at
time t = 0 are a and b respectively, and conc. of each substance that
has reacted after time t is equal to x then conc. of X and Y remaining
will be (a-x) & (b-x) respectively.
18
a) In case when (a ≠ b)
-dx = K (a-x) (b-x)----------------------------------------(3)
dt
Where -dx = rate of decrease in conc. of X or Y
dt
Integrating equation (3) we get
Kt = 2.303 log b(a-x)---------------------------------(4)
(a-b) a(b-x)
Rearranging equation (4) we get
log (a-x) = (a-b)Kt + log a ----------------------------(5)
(b-x) 2.303 b
19
So, if second order reaction is observed then graph of
log (a-x) Vs t
(b-x)
gives straight line with slope (a-b)K and
2.303
intercept log a/b at t =0.
SLOPE = (a-b) K
2.303
Log (a-x)
(b-x)
Time
20
b) In case when (a=b)
-dCX = K [X] 2
dt
Integration gives,
Kt = x ------------------------------------(6)
a(a-x)
 Rearrangement of equation (6) gives us
Kt = 1 - 1 -----------------------------(7)
a-x a
 So if second order reaction is observed then graph of 1/a-x vs t
gives straight line with slope K and intercept 1/a at t = 0.
 Unit of second order reaction is conc.-1 time-1 and
SI unit is mol-1 sec-1
 Half-life in this case is t1/2 = 1/ak.
Examples Of Second Order
Reaction
Thermal decomposition of Nitrous oxide
2N2O 2N2 +o2
Decomposition of NO2
2NO 2 2NO +O 2
Decomposition of Hydrogen Iodide
2HI H 2 + I2
HIRD ORDER REACTION & HIGHER
 Rate of change in conc. is proportional to three
concentration terms. However such reactions are
rare and their analysis is complex. Reaction of
even higher order is unlikely to occur.
 Rate equation for third order reaction is as follows
K = 1/2t [1/(a-x) 2 -1/a2]
Half Life Time
Half life time for third order reaction
t ½ = 1/a n-1
= 1/a 3-1 = 1/ a2
[as n=3]
Units:
k = mol -2 lit 2 sec -1
= conc. -2 sec -1
Examples Of Third Order
Reaction
 2NO + O2 2NO2
 2NO + Cl2 2NOCl
 2FeCl3 + SnCl2 2FeCl2 + SnCl4
Order of a reaction 2302

Weitere ähnliche Inhalte

Was ist angesagt?

2nd order reaction
2nd order reaction 2nd order reaction
2nd order reaction ZohaAltaf
 
Rate equations
Rate equationsRate equations
Rate equationsdhmcmillan
 
REACTION KINETICS
REACTION KINETICSREACTION KINETICS
REACTION KINETICSAsra Hameed
 
Stability of metal complexes
Stability of metal complexesStability of metal complexes
Stability of metal complexesSANTHANAM V
 
Theory of IR spectroscopy
Theory of IR spectroscopyTheory of IR spectroscopy
Theory of IR spectroscopychiranjibi68
 
UV-Visible spectroscopy
UV-Visible spectroscopyUV-Visible spectroscopy
UV-Visible spectroscopyMehulJain143
 
Determination of reaction order.
Determination of reaction order.Determination of reaction order.
Determination of reaction order.Soniya Sunil
 
Steric parameters taft’s steric factor (es)
Steric parameters  taft’s steric factor (es)Steric parameters  taft’s steric factor (es)
Steric parameters taft’s steric factor (es)Shikha Popali
 
Various factor affecting vibrational frequency in IR spectroscopy.
Various factor affecting vibrational frequency in IR spectroscopy.Various factor affecting vibrational frequency in IR spectroscopy.
Various factor affecting vibrational frequency in IR spectroscopy.vishvajitsinh Bhati
 
Difference between order and molecularity of a reaction 2310
Difference between order and molecularity of a reaction 2310Difference between order and molecularity of a reaction 2310
Difference between order and molecularity of a reaction 2310Prawin Ddy
 
Distribution law
Distribution lawDistribution law
Distribution lawpreetipal31
 
Thin layer Chromatography (TLC)
Thin layer Chromatography (TLC)Thin layer Chromatography (TLC)
Thin layer Chromatography (TLC)GOKULAKRISHNAN S
 
Diffusion (Physical Pharmacy)
Diffusion (Physical Pharmacy)Diffusion (Physical Pharmacy)
Diffusion (Physical Pharmacy)Areej Abu Hanieh
 

Was ist angesagt? (20)

2nd order reaction
2nd order reaction 2nd order reaction
2nd order reaction
 
Chemical kinetics v2
Chemical kinetics v2Chemical kinetics v2
Chemical kinetics v2
 
Rate equations
Rate equationsRate equations
Rate equations
 
Kinetic for Pharmaceutical analysis and Physical Pharmacy
Kinetic for Pharmaceutical analysis and Physical PharmacyKinetic for Pharmaceutical analysis and Physical Pharmacy
Kinetic for Pharmaceutical analysis and Physical Pharmacy
 
REACTION KINETICS
REACTION KINETICSREACTION KINETICS
REACTION KINETICS
 
Beer lambert's law
Beer lambert's lawBeer lambert's law
Beer lambert's law
 
Chemical Kinetics
Chemical Kinetics Chemical Kinetics
Chemical Kinetics
 
Stability of metal complexes
Stability of metal complexesStability of metal complexes
Stability of metal complexes
 
Theory of IR spectroscopy
Theory of IR spectroscopyTheory of IR spectroscopy
Theory of IR spectroscopy
 
UV-Visible spectroscopy
UV-Visible spectroscopyUV-Visible spectroscopy
UV-Visible spectroscopy
 
Determination of reaction order.
Determination of reaction order.Determination of reaction order.
Determination of reaction order.
 
Reaction kinetics
Reaction kineticsReaction kinetics
Reaction kinetics
 
Steric parameters taft’s steric factor (es)
Steric parameters  taft’s steric factor (es)Steric parameters  taft’s steric factor (es)
Steric parameters taft’s steric factor (es)
 
Effect of solvent
Effect of solventEffect of solvent
Effect of solvent
 
Stereoisomers
StereoisomersStereoisomers
Stereoisomers
 
Various factor affecting vibrational frequency in IR spectroscopy.
Various factor affecting vibrational frequency in IR spectroscopy.Various factor affecting vibrational frequency in IR spectroscopy.
Various factor affecting vibrational frequency in IR spectroscopy.
 
Difference between order and molecularity of a reaction 2310
Difference between order and molecularity of a reaction 2310Difference between order and molecularity of a reaction 2310
Difference between order and molecularity of a reaction 2310
 
Distribution law
Distribution lawDistribution law
Distribution law
 
Thin layer Chromatography (TLC)
Thin layer Chromatography (TLC)Thin layer Chromatography (TLC)
Thin layer Chromatography (TLC)
 
Diffusion (Physical Pharmacy)
Diffusion (Physical Pharmacy)Diffusion (Physical Pharmacy)
Diffusion (Physical Pharmacy)
 

Ähnlich wie Order of a reaction 2302

Reaction Kinetics
Reaction KineticsReaction Kinetics
Reaction Kineticsmiss j
 
kinetics of stability Molecular pharmaceutics
kinetics of stability Molecular pharmaceuticskinetics of stability Molecular pharmaceutics
kinetics of stability Molecular pharmaceuticsMittalGandhi
 
Lect w2 152 - rate laws_alg
Lect w2 152 - rate laws_algLect w2 152 - rate laws_alg
Lect w2 152 - rate laws_algchelss
 
Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Cleophas Rwemera
 
Second order reaction
Second order reactionSecond order reaction
Second order reactionsara tariq
 
AP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineAP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineJane Hamze
 
Module 1-Part B_Chemical Kinetics_DrSS3.pptx
Module 1-Part B_Chemical Kinetics_DrSS3.pptxModule 1-Part B_Chemical Kinetics_DrSS3.pptx
Module 1-Part B_Chemical Kinetics_DrSS3.pptxNVAMSIKRISHNA3
 
SY - PP II - Drug Stability.pdf
SY - PP II - Drug Stability.pdfSY - PP II - Drug Stability.pdf
SY - PP II - Drug Stability.pdfKeval80
 
Chemical kinetics Dr Satyabrata si
Chemical kinetics Dr Satyabrata siChemical kinetics Dr Satyabrata si
Chemical kinetics Dr Satyabrata siArosek Padhi
 
Rate Expression and Order of Reaction
Rate Expression and Order of ReactionRate Expression and Order of Reaction
Rate Expression and Order of Reactionxcom18
 
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptx
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptxc5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptx
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptxkhoinguyenngoccs3008
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kineticsjc762006
 

Ähnlich wie Order of a reaction 2302 (20)

Order of Reaction.pdf
Order of Reaction.pdfOrder of Reaction.pdf
Order of Reaction.pdf
 
Reaction Kinetics
Reaction KineticsReaction Kinetics
Reaction Kinetics
 
kinetics of stability Molecular pharmaceutics
kinetics of stability Molecular pharmaceuticskinetics of stability Molecular pharmaceutics
kinetics of stability Molecular pharmaceutics
 
Lect w2 152 - rate laws_alg
Lect w2 152 - rate laws_algLect w2 152 - rate laws_alg
Lect w2 152 - rate laws_alg
 
Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02Apchemunit12presentation 120116192240-phpapp02
Apchemunit12presentation 120116192240-phpapp02
 
Lds kinetics 3
Lds kinetics 3Lds kinetics 3
Lds kinetics 3
 
Lds kinetics 3
Lds kinetics 3Lds kinetics 3
Lds kinetics 3
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kinetics
 
Second order reaction
Second order reactionSecond order reaction
Second order reaction
 
AP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 OutlineAP Chemistry Chapter 14 Outline
AP Chemistry Chapter 14 Outline
 
Kinetics pp
Kinetics ppKinetics pp
Kinetics pp
 
Module 1-Part B_Chemical Kinetics_DrSS3.pptx
Module 1-Part B_Chemical Kinetics_DrSS3.pptxModule 1-Part B_Chemical Kinetics_DrSS3.pptx
Module 1-Part B_Chemical Kinetics_DrSS3.pptx
 
SY - PP II - Drug Stability.pdf
SY - PP II - Drug Stability.pdfSY - PP II - Drug Stability.pdf
SY - PP II - Drug Stability.pdf
 
Chemical kinetics
Chemical kineticsChemical kinetics
Chemical kinetics
 
Chemical kinetics Dr Satyabrata si
Chemical kinetics Dr Satyabrata siChemical kinetics Dr Satyabrata si
Chemical kinetics Dr Satyabrata si
 
Rate Expression and Order of Reaction
Rate Expression and Order of ReactionRate Expression and Order of Reaction
Rate Expression and Order of Reaction
 
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptx
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptxc5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptx
c5-chemkinetic_ko_thi_effect_of_temperature_and_concentration.pptx
 
Chemical Kinetics
Chemical KineticsChemical Kinetics
Chemical Kinetics
 
Ch 15 Web
Ch 15 WebCh 15 Web
Ch 15 Web
 

Kürzlich hochgeladen

Introduction to Machine Learning Unit-3 for II MECH
Introduction to Machine Learning Unit-3 for II MECHIntroduction to Machine Learning Unit-3 for II MECH
Introduction to Machine Learning Unit-3 for II MECHC Sai Kiran
 
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort serviceGurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort servicejennyeacort
 
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube Exchanger
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube ExchangerStudy on Air-Water & Water-Water Heat Exchange in a Finned Tube Exchanger
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube ExchangerAnamika Sarkar
 
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)Dr SOUNDIRARAJ N
 
Concrete Mix Design - IS 10262-2019 - .pptx
Concrete Mix Design - IS 10262-2019 - .pptxConcrete Mix Design - IS 10262-2019 - .pptx
Concrete Mix Design - IS 10262-2019 - .pptxKartikeyaDwivedi3
 
Class 1 | NFPA 72 | Overview Fire Alarm System
Class 1 | NFPA 72 | Overview Fire Alarm SystemClass 1 | NFPA 72 | Overview Fire Alarm System
Class 1 | NFPA 72 | Overview Fire Alarm Systemirfanmechengr
 
Call Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call GirlsCall Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call Girlsssuser7cb4ff
 
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETE
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETEINFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETE
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETEroselinkalist12
 
8251 universal synchronous asynchronous receiver transmitter
8251 universal synchronous asynchronous receiver transmitter8251 universal synchronous asynchronous receiver transmitter
8251 universal synchronous asynchronous receiver transmitterShivangiSharma879191
 
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor CatchersTechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catcherssdickerson1
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionMebane Rash
 
Architect Hassan Khalil Portfolio for 2024
Architect Hassan Khalil Portfolio for 2024Architect Hassan Khalil Portfolio for 2024
Architect Hassan Khalil Portfolio for 2024hassan khalil
 
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsync
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsyncWhy does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsync
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsyncssuser2ae721
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...121011101441
 
lifi-technology with integration of IOT.pptx
lifi-technology with integration of IOT.pptxlifi-technology with integration of IOT.pptx
lifi-technology with integration of IOT.pptxsomshekarkn64
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - GuideGOPINATHS437943
 
Work Experience-Dalton Park.pptxfvvvvvvv
Work Experience-Dalton Park.pptxfvvvvvvvWork Experience-Dalton Park.pptxfvvvvvvv
Work Experience-Dalton Park.pptxfvvvvvvvLewisJB
 
Application of Residue Theorem to evaluate real integrations.pptx
Application of Residue Theorem to evaluate real integrations.pptxApplication of Residue Theorem to evaluate real integrations.pptx
Application of Residue Theorem to evaluate real integrations.pptx959SahilShah
 

Kürzlich hochgeladen (20)

Introduction to Machine Learning Unit-3 for II MECH
Introduction to Machine Learning Unit-3 for II MECHIntroduction to Machine Learning Unit-3 for II MECH
Introduction to Machine Learning Unit-3 for II MECH
 
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort serviceGurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
 
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube Exchanger
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube ExchangerStudy on Air-Water & Water-Water Heat Exchange in a Finned Tube Exchanger
Study on Air-Water & Water-Water Heat Exchange in a Finned Tube Exchanger
 
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
UNIT III ANALOG ELECTRONICS (BASIC ELECTRONICS)
 
Concrete Mix Design - IS 10262-2019 - .pptx
Concrete Mix Design - IS 10262-2019 - .pptxConcrete Mix Design - IS 10262-2019 - .pptx
Concrete Mix Design - IS 10262-2019 - .pptx
 
Class 1 | NFPA 72 | Overview Fire Alarm System
Class 1 | NFPA 72 | Overview Fire Alarm SystemClass 1 | NFPA 72 | Overview Fire Alarm System
Class 1 | NFPA 72 | Overview Fire Alarm System
 
Call Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call GirlsCall Girls Narol 7397865700 Independent Call Girls
Call Girls Narol 7397865700 Independent Call Girls
 
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETE
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETEINFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETE
INFLUENCE OF NANOSILICA ON THE PROPERTIES OF CONCRETE
 
8251 universal synchronous asynchronous receiver transmitter
8251 universal synchronous asynchronous receiver transmitter8251 universal synchronous asynchronous receiver transmitter
8251 universal synchronous asynchronous receiver transmitter
 
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor CatchersTechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
TechTAC® CFD Report Summary: A Comparison of Two Types of Tubing Anchor Catchers
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of Action
 
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
🔝9953056974🔝!!-YOUNG call girls in Rajendra Nagar Escort rvice Shot 2000 nigh...
 
Architect Hassan Khalil Portfolio for 2024
Architect Hassan Khalil Portfolio for 2024Architect Hassan Khalil Portfolio for 2024
Architect Hassan Khalil Portfolio for 2024
 
young call girls in Green Park🔝 9953056974 🔝 escort Service
young call girls in Green Park🔝 9953056974 🔝 escort Serviceyoung call girls in Green Park🔝 9953056974 🔝 escort Service
young call girls in Green Park🔝 9953056974 🔝 escort Service
 
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsync
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsyncWhy does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsync
Why does (not) Kafka need fsync: Eliminating tail latency spikes caused by fsync
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...
 
lifi-technology with integration of IOT.pptx
lifi-technology with integration of IOT.pptxlifi-technology with integration of IOT.pptx
lifi-technology with integration of IOT.pptx
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - Guide
 
Work Experience-Dalton Park.pptxfvvvvvvv
Work Experience-Dalton Park.pptxfvvvvvvvWork Experience-Dalton Park.pptxfvvvvvvv
Work Experience-Dalton Park.pptxfvvvvvvv
 
Application of Residue Theorem to evaluate real integrations.pptx
Application of Residue Theorem to evaluate real integrations.pptxApplication of Residue Theorem to evaluate real integrations.pptx
Application of Residue Theorem to evaluate real integrations.pptx
 

Order of a reaction 2302

  • 1.
  • 2. 2 CHEMICAL KINEMATICS “the branch of physical chemistry which deals with the rate of chemical reactions and the mechanism through which they occur is called chemical kinematics”
  • 3. 3 RATE CONSTANT  A rate constant is a proportionality constant that appears in a rate law. For example, k is the rate constant in the rate law d[A]/dt = k[A].  Rate constants are independent of concentration but depend on other factors, most notably temperature.
  • 4. Order Of Reaction The sum of the powers of concentration terms in rate equation is known as order of reaction. Consider a reaction mA+nB product Rate eq (R)=k[A]m[B]n Order = m + n
  • 5.  This is the number of concentration terms that determine the rate.  Consider the reaction: A + B C + D  The rate of the reaction is proportional to the concentration of A to the power of x, [A]x  and also the rate may be proportional to the concentration of B to the power of y, [B]y.  The overall equation is, Rate = k [A]x [B]y  The overall order of reaction is x+y
  • 6. Reaction Rate and Order 6  Reaction rate is the velocity of reaction to convert the reactants into its product.  Reactions may be classified according to the order of reaction, which is the number of reacting species whose concentration determines the rate at which the reaction occurs.  The most important orders of reaction are; zero-order (breakdown rate is independent of the concentration of any of the reactants), first-order (reaction rate is determined by one concentration term) and second-order (rate is determined by the concentrations of two reacting species).  The decomposition of many drugs can occur simultaneously by two or more pathways, which complicates the determination of rate constants.
  • 7. TYPES OF ORDER OF REACTION 7 1. Zero order reaction 2. First order reaction 3. Second order reaction 4. Third order reaction & Higher
  • 8. ZERO ORDER REACTION 8  ‘’When the reaction rate is independent of concentration of the reacting substance, it depends on the zero power of the reactant and therefore is zero order reaction.’’  In this type of reaction, the limiting factor is something other than concentration, for example, solubility or absorption of light in certain photochemical reactions. Example:  Loss of colour of multi-sulfa drug.  Rate of The rate of decomposition can be described mathematically as: Rate of concentration decrease; -dCx = K…………………(1) dt
  • 9. 9 Integrating the equation respect to time from t=0 to t=t, we get; X = Kt + constant…………………(2) Comparing this equation with y=m x + c, and A plot of X Vs time results in straight line with slope equal to K. The value of K indicate the amount of drug that is degraded per unit time, and intercept of line at time zero is equal to constant in equation (2). concentration time Slope = k
  • 10. 10  The unit of K is concentration time-1, with typical units of mole L-1 s-1.  Half-life is given by equation; t1/2 = Co/2k Examples: - • Vitamin A acetate to anhydrous vitamin A. • Photolysis of cefotaxime. • Loss in color of multi sulfa product. • Intravenous infusion, Drug released from TDDS.
  • 11. FIRST ORDER REACTION 11  ‘’When the reaction rate depends on the first power of concentration of a single reactant,’’ it is considered to be first order. Example are • Absorption, distribution, elimination rates. • Microbial death kinetics.  Thus the rate of reaction is directly proportional to the concentration of reacting substance and can be expressed as follows: Rate of concentration decrease; - dCX = KCx…………………………….(1) dt
  • 12. 12  When the reaction rate depends on the first power of concentration of a single reactant, it is considered to be first order.  If concentration of reactant X is ‘a’ at beginning of reaction when t = 0, & if amount that has reacted after time t is denoted by x then amount of X remaining at time t will be (a-x).  Therefore, - dCX = K (a-x) ………………..(2) dt dCX = -K dt …………………(3) (a-x)  Integrating equation between time limit 0 to t a ∫a-x dCX = -K 0∫t dt dt ln (a-x) –ln a = -Kt log (a-x) – log a = -Kt/2.303 log (a-x) = log a – Kt/2.303 ……………..(4)  Equation (4) is like y = mx + c (linear relationship)
  • 13. 13  If first order law is obeyed then a graph of log (a-x) v/s time t will give straight line with slope of –K/2.303 and an intercept of log a at t = 0.  Rearranging equation (4) we have K = 2.303 log (a/a-x) ………. (5) t SLOPE = -K 2.303log (a-x) time
  • 14. 14  Unit of K for first order is time-1 i.e. SI unit is (sec)-1 because K is inversely proportional to t.  The half-life t1/2 of a drug is the time required for 50% of drug to degrade and can be calculated as follows: t1/2 = 2.303 log C0 = 2.303 log 100 k C k 50 = 2.303 log 2 = 0.693 k k therefore, t1/2 = 0.693 ……………….. (7) k
  • 15. 15  In pharmaceutical field , the time required for 10% of the drug to degrade is an important value to know, since it represents a reasonable limit of degradation of active ingredients. The t10% value can be calculated as t10% = 0.104 k or t10% = 0.152 t1/2
  • 16. Examples of first order reaction  Thermal decomposition of N2O5 N2O5 N2O3+O2  Hydrolysis of hydrogen peroxide H2O2 H2O +1/2O2  Decomposition of Calcium carbide CaCo3 Cao + Co2
  • 17. SECOND ORDER REACTION  ‘’Rate of change in conc. of product and reactant is dependent on second power of conc. of single reactant or to first powers of the conc. of two reactants.’’ i.e. - dCX = K [X] [Y]-------------------------------------(1) dt or -dCX = K [X]2 ----------------------------------------(2) dt - dCX = K [X] [Y] dt  Here decrease in conc. of Y is similar to X. If conc. of X and Y at time t = 0 are a and b respectively, and conc. of each substance that has reacted after time t is equal to x then conc. of X and Y remaining will be (a-x) & (b-x) respectively.
  • 18. 18 a) In case when (a ≠ b) -dx = K (a-x) (b-x)----------------------------------------(3) dt Where -dx = rate of decrease in conc. of X or Y dt Integrating equation (3) we get Kt = 2.303 log b(a-x)---------------------------------(4) (a-b) a(b-x) Rearranging equation (4) we get log (a-x) = (a-b)Kt + log a ----------------------------(5) (b-x) 2.303 b
  • 19. 19 So, if second order reaction is observed then graph of log (a-x) Vs t (b-x) gives straight line with slope (a-b)K and 2.303 intercept log a/b at t =0. SLOPE = (a-b) K 2.303 Log (a-x) (b-x) Time
  • 20. 20 b) In case when (a=b) -dCX = K [X] 2 dt Integration gives, Kt = x ------------------------------------(6) a(a-x)  Rearrangement of equation (6) gives us Kt = 1 - 1 -----------------------------(7) a-x a  So if second order reaction is observed then graph of 1/a-x vs t gives straight line with slope K and intercept 1/a at t = 0.  Unit of second order reaction is conc.-1 time-1 and SI unit is mol-1 sec-1  Half-life in this case is t1/2 = 1/ak.
  • 21. Examples Of Second Order Reaction Thermal decomposition of Nitrous oxide 2N2O 2N2 +o2 Decomposition of NO2 2NO 2 2NO +O 2 Decomposition of Hydrogen Iodide 2HI H 2 + I2
  • 22. HIRD ORDER REACTION & HIGHER  Rate of change in conc. is proportional to three concentration terms. However such reactions are rare and their analysis is complex. Reaction of even higher order is unlikely to occur.  Rate equation for third order reaction is as follows K = 1/2t [1/(a-x) 2 -1/a2]
  • 23. Half Life Time Half life time for third order reaction t ½ = 1/a n-1 = 1/a 3-1 = 1/ a2 [as n=3] Units: k = mol -2 lit 2 sec -1 = conc. -2 sec -1
  • 24. Examples Of Third Order Reaction  2NO + O2 2NO2  2NO + Cl2 2NOCl  2FeCl3 + SnCl2 2FeCl2 + SnCl4