Chemistry booster series
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#SIGNIFICANTFIGURES
๐ŸŒฑ Definition
Digits which convey certainty + one uncertain digit

โญ Rules to Count Significant Figures
โœ”๏ธ All non-zero digits โ†’ significant
โœ”๏ธ Zeros between non-zero โ†’ significant
โœ”๏ธ Leading zeros โ†’ โŒ not significant
โœ”๏ธ Trailing zeros โ†’ significant only with decimal

๐Ÿ“Œ Examples:
0.0045 โ†’ 2 SF
2.300 โ†’ 4 SF
1500 โ†’ 2 SF (without decimal)

โž•โž– Addition / Subtraction
Result โ†’ least decimal places
๐Ÿ“Œ Example:
12.11 + 0.2 = 12.3

โœ–๏ธโž— Multiplication / Division
Result โ†’ least significant figures
๐Ÿ“Œ Example:
2.5 ร— 1.23 = 3.1 (2 SF)

๐Ÿ”ข Rounding Off Rules
Next digit < 5 โ†’ same
Next digit โ‰ฅ 5 โ†’ +1
๐Ÿ“Œ 2.34 โ†’ 2.3
๐Ÿ“Œ 2.36 โ†’ 2.4

#NEETHOTPOINTS
โœ”๏ธ Exact numbers โ†’ infinite SF
โœ”๏ธ Unit conversion โ†’ SF maintained
โœ”๏ธ Final answer rounding last step

@Ayano1me @Neetugpoll @Neetugquiz
Ans eve m upload hoga sb try krna

Question 1 (Concept + Limiting Reagent):

A mixture contains 4 g Hโ‚‚ and 32 g Oโ‚‚.
They react according to:
2H2+O2= 2H2O
Find:
(i) Limiting reagent
(ii) Mass of water formed
(iii) Mass of excess reactant left

Question 2 (Gas + Stoichiometry + Trick)

At STP, 11.2 L of a gaseous hydrocarbon reacts completely with excess Oโ‚‚ to produce 44 g COโ‚‚.
Identify the hydrocarbon.

Question 3 (Equivalent + Redox + Stoichiometry )

A 10 g mixture of Naโ‚‚COโ‚ƒ and NaHCOโ‚ƒ is completely neutralised by 200 mL of 1 N HCl.
Find the mass percentage of Naโ‚‚COโ‚ƒ in the mixture.

#SIGNIFICANTFIGURES

Question :1 Evaluate the result with correct significant figures:
(2.36+0.040) +1.2

Question 2
The mass of a cube is measured as 2.50 g and each edge is measured as 1.20 cm.
Calculate the density of the cube with correct significant figures.

๏ปฟ
20 imp topic chemistry series start
โค1๐Ÿฅฐ1๐Ÿ˜Ž1
What is a Solution?
A homogeneous mixture of: โœ”๏ธ Solute (less amount)
โœ”๏ธ Solvent (more amount)
๐Ÿ“Œ Examples:
Sugar in water
Salt in water
โญ Types of Solutions (Based on Raoultโ€™s Law)
๐Ÿ”น #IdealSolution
๐Ÿ“Œ Obeys Raoultโ€™s law at all concentrations
โœ”๏ธ ฮ”Hmix = 0
โœ”๏ธ ฮ”Vmix = 0
โœ”๏ธ Aโ€“A โ‰ˆ Bโ€“B โ‰ˆ Aโ€“B interactions
๐Ÿ“Œ Examples:
Benzene + Toluene
n-Hexane + n-Heptane

#NonIdealSolution
๐Ÿ“Œ Does NOT obey Raoultโ€™s law
โœ”๏ธ ฮ”Hmix โ‰  0
โœ”๏ธ ฮ”Vmix โ‰  0
โœ”๏ธ Aโ€“B โ‰  Aโ€“A or Bโ€“B interactions
โญ Types of Non-Ideal Solutions

1๏ธโƒฃ #PositiveDeviation
โœ”๏ธ Aโ€“B interactions weaker
โœ”๏ธ Vapour pressure โ†‘
โœ”๏ธ Endothermic mixing (ฮ”H > 0)
๐Ÿ“Œ Examples:
Ethanol + Acetone
Acetone + CSโ‚‚

2๏ธโƒฃ #NegativeDeviation
โœ”๏ธ Aโ€“B interactions stronger
โœ”๏ธ Vapour pressure โ†“
โœ”๏ธ Exothermic mixing (ฮ”H < 0)
๐Ÿ“Œ Examples:
Chloroform + Acetone
HNOโ‚ƒ + Water

โญ Azeotropes
๐Ÿ“Œ Constant boiling mixture
๐Ÿ“Œ Vapour composition = Liquid composition
โœ”๏ธ Positive deviation โ†’ Minimum boiling azeotrope
โœ”๏ธ Negative deviation โ†’ Maximum boiling azeotrope

@Ayano1me @Neetugpoll @Neetugquiz
โค2๐Ÿ‘1๐Ÿ”ฅ1๐Ÿ˜1๐Ÿ˜˜1
#ColligativeProperties
Properties depending on number of solute particles, not nature

โญ 4 Colligative Properties

1๏ธโƒฃ Relative Lowering of Vapour Pressure
๐Ÿ“Œ ฮ”P / Pยฐ = nโ‚‚ / nโ‚
๐Ÿ“Œ Raoultโ€™s law based

2๏ธโƒฃ Elevation of Boiling Point
๐Ÿ“Œ ฮ”Tb = Kb ยท m
โœ”๏ธ Boiling point โ†‘
โœ”๏ธ Kb โ†’ Molal elevation constant
3๏ธโƒฃ Depression of Freezing Point
๐Ÿ“Œ ฮ”Tf = Kf ยท m
โœ”๏ธ Freezing point โ†“
โœ”๏ธ Kf โ†’ Molal depression constant
4๏ธโƒฃ Osmotic Pressure
๐Ÿ“Œ ฯ€ = CRT
โœ”๏ธ Most reliable colligative property
โœ”๏ธ Used to find molar mass


โญ #Vanโ€™tHoffFactor (i)
๐Ÿ“Œ i = Actual number of particles / Expected number
โœ”๏ธ Association โ†’ i < 1
โœ”๏ธ Dissociation โ†’ i > 1
โœ”๏ธ Non-electrolyte โ†’ i = 1
๐Ÿ“Œ Modified formulas:
ฮ”Tb = iKb m
ฮ”Tf = iKf m
ฯ€ = iCRT

#NEETHOTPOINTS
โœ”๏ธ Ideal solution โ†’ ฮ”Hmix = 0
โœ”๏ธ Positive deviation โ†’ Weak Aโ€“B attraction
โœ”๏ธ Negative deviation โ†’ Strong Aโ€“B attraction
โœ”๏ธ Azeotrope โ†’ Constant boiling mixture
โœ”๏ธ Most accurate colligative property โ†’ Osmotic pressure

@Ayano1me @Neetugpoll @Neetugquiz
โค2๐Ÿ”ฅ1๐Ÿ˜1
#ElectrochemicalCell
Device that converts chemical energy โ†’ electrical energy
๐Ÿ“Œ Components:
Anode โ†’ Oxidation
Cathode โ†’ Reduction
๐Ÿ“Œ Electron flow: Anode โ†’ Cathode
๐Ÿ”‹ EMF of Cell
๐Ÿ“Œ Eยฐcell = Eยฐcathode โˆ’ Eยฐanode
โœ”๏ธ Standard conditions: 1 M, 1 atm, 298 K

#NernstEquation (Very High Yield )
๐ŸŒฑ Used to calculate cell potential at non-standard conditions
โญ General form:

E=Eยฐ-RT/NF LN Q

At 298K

E=Eยฐ-0.0591/n LogQ

Where
E = Cell potential
Eยฐ = Standard potential
n = Number of electrons transferred
Q = Reaction quotient

#Specialcases (Direct MCQ)
โœ”๏ธ For concentration cell:

E=0.059/n log C2/C1

โœ”๏ธ At equilibrium:
E = 0
Q = K
Eยฐ=0.059/n logK

@Ayano1me @Neetugpoll
โค2๐Ÿ˜1๐Ÿ†1๐Ÿ™ˆ1
Conductivity
๐ŸŒฑ Electrical Conductance (G)
๐Ÿ“Œ Reciprocal of resistance
G=1/R
Unit: Siemens (S)

โญ Specific Conductivity (ฮบ)
Conductance of solution of: โœ”๏ธ 1 cm length
โœ”๏ธ 1 cmยฒ area
Depends on:
Concentration
Temperature
Nature of electrolyte

โญ Molar Conductivity (ฮ›m)
(ฮ›m)=kร—1000/C
Unit: S cmยฒ molโปยน

๐Ÿ“Œ C = molarity
โœ”๏ธ Increases on dilution
โœ”๏ธ Maximum value at infinite dilution โ†’ ฮ›ยฐm

Strong vs Weak Electrolyte
Feature :Strong :Weak
Ionisation :Complete :Partial
ฮ›m with dilution :Slight โ†‘ :Sharp โ†‘
Kohlrausch law :โœ”๏ธ Applicable
: โœ”๏ธ Applicable

#Kohlrauschโ€™s Law
At infinite dilution:
ฮ›mยฐ=(ฮ›mยฐ+) + ((ฮ›mยฐ_)

โœ”๏ธ Helps calculate:
ฮ›ยฐm of weak electrolytes
Degree of dissociation
Ka, Kb

#NEETHOTPOINTS
โœ”๏ธ Nernst eqn at 298 K โ†’ 0.0591/n
โœ”๏ธ At equilibrium โ†’ E = 0
โœ”๏ธ Unit of ฮบ โ†’ S cmโปยน
โœ”๏ธ ฮ›m increases with dilution
โœ”๏ธ Maximum conductivity โ†’ Infinite dilution

@Ayano1me @Neetugpoll @neetugquiz
๐Ÿ”ฅ2โค1๐ŸŽ‰1๐Ÿ’ฏ1
#ChemicalKinetics

โญ First Order Reaction
๐ŸŒฑ Definition
Reaction whose rate depends on concentration of one reactant raised to power 1

๐Ÿ“Œ Rate law:
Rate =k(A)

๐Ÿ”ข Integrated Rate Equation
K=2.303/t log (A)โ€ข/(A)
๐Ÿ“Œ Where:
๏ฟฝ = rate constant
๏ฟฝ = time
๏ฟฝ = initial concentration
๏ฟฝ = concentration at time t

#Halflife (tยฝ)
Time for concentration to become half
t1/2=0.693/k

โญIndependent of initial concentration (#veryimp )
Units
โœ”๏ธ Rate constant (k) โ†’ sโปยน
Graph (Direct MCQ)
โœ”๏ธ log[A] vs t โ†’ Straight line
โœ”๏ธ Slope โ†’ โ€“k/2.303

Examples
โœ”๏ธ Radioactive decay
โœ”๏ธ Decomposition of Nโ‚‚Oโ‚…
โœ”๏ธ Acid hydrolysis of esters (pseudo-first order)

#NEETHOTPOINTS (1st Order)
โœ”๏ธ Half-life independent of concentration
โœ”๏ธ Unit of k โ†’ sโปยน
โœ”๏ธ Straight line graph โ†’ log[A] vs t
โœ”๏ธ Pseudo-first order โ†’ One reactant in excess

@Ayano1me @Neetugpoll @NeetugQuiz
๐Ÿ™1๐Ÿ•Š1๐Ÿ˜1
#Arrhenius Equation
๐ŸŒฑ Shows effect of temperature on rate constant
โญ Equation

K=Ae^-ea/Rt
๐Ÿ“Œ Where:
๏ฟฝ = rate constant
๏ฟฝ = Arrhenius factor / frequency factor
๏ฟฝ = Activation energy
๏ฟฝ = Gas constant
๏ฟฝ = Temperature (K)

โญ Log Form (Most Used)
LogK=logA-Ea/2.303RT

โญ Two Temperature Form
Log K2/K2=Ea/2.303R(T2-T1/T2โ€ขT1)

#Graph
โœ”๏ธ log k vs 1/T โ†’ Straight line
โœ”๏ธ Slope โ†’ โ€“Ea / 2.303R
โœ”๏ธ Intercept โ†’ log A

#Effect of Catalyst
โœ”๏ธ Lowers Ea
โœ”๏ธ Does NOT change ฮ”H
โœ”๏ธ Increases rate

#NEETHOTPOINTS
โœ”๏ธ Higher Ea โ†’ Slower reaction
โœ”๏ธ Catalyst โ†’ lowers Ea
โœ”๏ธ Temperature โ†‘ โ†’ k โ†‘
โœ”๏ธ Straight line โ†’ log k vs 1/T
โœ”๏ธ Unit of Ea โ†’ J molโปยน

@Ayano1me @Neetugpoll Neetugquiz
๐Ÿฅฐ1๐Ÿ•Š1๐Ÿ†1
General Physical Properties (d-Block)
โญ Atomic & Ionic Size
โœ”๏ธ Size decreases from left โ†’ right (โ†‘ nuclear charge)
โœ”๏ธ After middle โ†’ almost constant (poor shielding by d-electrons)

โญ Density
โœ”๏ธ Increases from 3d โ†’ 4d โ†’ 5d
๐Ÿ“Œ Reason:
Increase in atomic mass
Lanthanide contraction (5d elements smaller โ†’ higher density)

โญ Melting & Boiling Points
โœ”๏ธ Very high
๐Ÿ“Œ Reason:
Strong metallic bonding
Involvement of d-electrons
๐Ÿ“Œ Exceptions:
Zn, Cd, Hg โ†’ low m.p.
โœ”๏ธ Hg โ†’ liquid (weak metallic bonding)

โญ Variable Oxidation States
โœ”๏ธ Due to similar energy of (nโˆ’1)d & ns electrons
๐Ÿ“Œ Example:
Fe โ†’ +2, +3
Mn โ†’ +2 to +7

โญ Magnetic Properties
โœ”๏ธ Paramagnetic โ†’ unpaired electrons
โœ”๏ธ Diamagnetic โ†’ all paired
๐Ÿ“Œ Magnetic moment:
U=โˆšn(n+2)

โญ Colour
โœ”๏ธ Due to dโ€“d transitions
โœ”๏ธ Znยฒโบ, Cdยฒโบ โ†’ colourless (dยนโฐ)
@Ayano1me @Neetugpoll @neetugquiz
โšก1๐Ÿ•Š1๐Ÿ˜˜1
๐ŸŒŸ Lanthanide Contraction (VERY HIGH YIELD ๐Ÿ”ฅ)
๐ŸŒฑ Definition
Gradual decrease in atomic & ionic radii of lanthanides from La โ†’ Lu
#Reason
โœ”๏ธ Poor shielding effect of 4f-electrons
โœ”๏ธ Effective nuclear charge increases
๐Ÿ”ฅ Consequences of Lanthanide Contraction
1๏ธโƒฃ Similar size of 4d & 5d elements
๐Ÿ“Œ Zr โ‰ˆ Hf
๐Ÿ“Œ Chemical properties similar
2๏ธโƒฃ High density of 5d elements
๐Ÿ“Œ Reason:
Smaller size
Higher mass
3๏ธโƒฃ Difficulty in separation of lanthanides
๐Ÿ“Œ Very similar radii & properties
4๏ธโƒฃ Basic strength of hydroxides decreases
๐Ÿ“Œ La(OH)โ‚ƒ > Lu(OH)โ‚ƒ
5๏ธโƒฃ Decrease in ionic radii of Lnยณโบ ions
๐Ÿ“Œ Affects coordination number & complex formation
#NEETHOTPOINTS
โœ”๏ธ Poor shielding โ†’ 4f electrons
โœ”๏ธ Cause of Zrโ€“Hf similarity โ†’ Lanthanide contraction
โœ”๏ธ Colour in d-block โ†’ dโ€“d transition
โœ”๏ธ Colour in f-block โ†’ fโ€“f transition
โœ”๏ธ Most stable oxidation state of lanthanides โ†’ +3
@Ayano1me @Neetugpoll @neetugquiz
๐Ÿ‘1๐Ÿ”ฅ1๐Ÿ•Š1
#CoordinationCompounds
Valence Bond Theory (VBT) & Isomerism (NCERT โ€ข NEET)

๐ŸŒฑ Coordination Compound
A compound in which: โœ”๏ธ Central metal atom/ion
โœ”๏ธ Surrounded by ligands
โœ”๏ธ Linked by coordinate bonds
๐Ÿ“Œ Example: [Co(NHโ‚ƒ)โ‚†]Clโ‚ƒ

โญ #ValenceBondTheory (VBT)
๐ŸŒฑ Explains: โœ”๏ธ Geometry
โœ”๏ธ Magnetic behaviour
โœ”๏ธ Hybridisation

๐Ÿ”น Postulates of VBT
โœ”๏ธ Metal ion provides empty orbitals
โœ”๏ธ Ligands donate lone pair
โœ”๏ธ Overlap โ†’ coordinate bond
โœ”๏ธ Paired/unpaired electrons decide magnetic nature

โญ #Hybridisation&Geometry
Hybridisation :Geometry
dยฒspยณ / spยณdยฒ :Octahedral
spยณ : Tetrahedral
dspยฒ : Square planar

#InnerOrbitalvsOuterOrbitalComplex
โญ Inner Orbital Complex (Low spin)
โœ”๏ธ Uses (nโˆ’1)d orbitals
โœ”๏ธ Pairing of electrons occurs
โœ”๏ธ Strong field ligands
๐Ÿ“Œ Example:
[Co(NHโ‚ƒ)โ‚†]ยณโบ โ†’ dยฒspยณ (octahedral)

โญ Outer Orbital Complex (High spin)
โœ”๏ธ Uses nd orbitals
โœ”๏ธ No pairing
โœ”๏ธ Weak field ligands
๐Ÿ“Œ Example:
[FeFโ‚†]ยณโป โ†’ spยณdยฒ (octahedral)

#MagneticNature (VBT)
โœ”๏ธ Unpaired eโป โ†’ Paramagnetic
โœ”๏ธ Paired eโป โ†’ Diamagnetic
๐Ÿ“Œ Example:
[Ni(CN)โ‚„]ยฒโป โ†’ Diamagnetic (dspยฒ)
[NiClโ‚„]ยฒโป โ†’ Paramagnetic (spยณ)
โš ๏ธ Limitations of VBT
โŒ Cannot explain colour
โŒ Cannot explain strong vs weak ligands clearly
โŒ No quantitative explanation of spectra

@Ayano1me @Neetugpoll @Neetugquiz
๐ŸŽ‰1๐Ÿณ1๐Ÿ™ˆ1
Isomerism in Coordination Compounds
๐ŸŒฑ Compounds with same formula but different arrangement

โญ #Structural Isomerism
1๏ธโƒฃ Ionisation Isomerism
โœ”๏ธ Exchange between ligand & counter ion
๐Ÿ“Œ Example:
[Co(NHโ‚ƒ)โ‚…SOโ‚„]Br
[Co(NHโ‚ƒ)โ‚…Br]SOโ‚„

2๏ธโƒฃ Solvate (Hydrate) Isomerism
โœ”๏ธ Water inside or outside coordination sphere
๐Ÿ“Œ Example:
[Cr(Hโ‚‚O)โ‚†]Clโ‚ƒ
[Cr(Hโ‚‚O)โ‚…Cl]Clโ‚‚ยทHโ‚‚O

3๏ธโƒฃ Linkage Isomerism
โœ”๏ธ Ambidentate ligands
๐Ÿ“Œ Example:
NOโ‚‚โป โ†’ nitro / nitrito
SCNโป โ†’ thiocyanato / isothiocyanato

4๏ธโƒฃ Coordination Isomerism
โœ”๏ธ Between cationic & anionic complexes
๐Ÿ“Œ Example:
[Co(NHโ‚ƒ)โ‚†][Cr(CN)โ‚†]
[Cr(NHโ‚ƒ)โ‚†][Co(CN)โ‚†]

โญ #Stereoisomerism
1๏ธโƒฃ Geometrical Isomerism
โœ”๏ธ cisโ€“trans
๐Ÿ“Œ Examples:
[Pt(NHโ‚ƒ)โ‚‚Clโ‚‚]
[Co(NHโ‚ƒ)โ‚„Clโ‚‚]โบ

2๏ธโƒฃ Optical Isomerism
โœ”๏ธ Non-superimposable mirror images
โœ”๏ธ d & l forms
๐Ÿ“Œ Example:
[Co(en)โ‚ƒ]ยณโบ

#NEETHOTPOINTS
โœ”๏ธ Square planar โ†’ dspยฒ
โœ”๏ธ Strong ligand โ†’ pairing โ†’ inner orbital
โœ”๏ธ Ambidentate ligand โ†’ linkage isomerism
โœ”๏ธ cisโ€“trans in square planar & octahedral
โœ”๏ธ Optical isomerism โ†’ no plane of symmetry

@Ayano1me @Neetugpoll @Neetugquiz
๐ŸŽ‰1๐Ÿคฉ1๐Ÿ‘Œ1
#Haloalkanes
Alkanes in which H is replaced by halogen (F, Cl, Br, I)
๐Ÿ“Œ General formula: Rโ€“X
๐Ÿ”„ Nucleophilic Substitution Reactions
โญ SN1 Reaction (Unimolecular)
๐ŸŒฑ Rate depends on only one species
๐Ÿ“Œ Rate = k[Rโ€“X]
๐Ÿ”น Mechanism (2 Step)
1๏ธโƒฃ Rโ€“X โ†’ Rโบ + Xโป (Slow, RDS)
2๏ธโƒฃ Rโบ + Nuโป โ†’ Rโ€“Nu (Fast)
โญ Key Features
โœ”๏ธ Formation of carbocation
โœ”๏ธ Rearrangement possible
โœ”๏ธ Racemisation occurs
โœ”๏ธ Favoured by polar protic solvents
โญ Order of Reactivity
3ยฐ > 2ยฐ > 1ยฐ > CHโ‚ƒ
๐Ÿ“Œ Reason: Carbocation stability
โญ SN2 Reaction (Bimolecular)
๐ŸŒฑ Single step reaction
๐Ÿ“Œ Rate = k[Rโ€“X][Nuโป]
๐Ÿ”น Mechanism
โœ”๏ธ Backside attack
โœ”๏ธ Transition state formation
โœ”๏ธ Simultaneous bond making & breaking
โญ Key Features
โœ”๏ธ No carbocation
โœ”๏ธ No rearrangement
โœ”๏ธ Inversion of configuration (Walden inversion)
โœ”๏ธ Favoured by polar aprotic solvents
โญ Order of Reactivity
CHโ‚ƒ > 1ยฐ > 2ยฐ >> 3ยฐ
๐Ÿ“Œ Reason: Steric hindrance

SN1 vs SN2 (Direct MCQ)
Feature :SN1 :SN2
Steps :2 :1
Rate depends on :Rโ€“X :Rโ€“X & Nuโป
Intermediate :Carbocation :None
Rearrangement :โœ”๏ธ :โŒ
Stereochemistry :Racemisation
: Inversion
Favoured by ;3ยฐ haloalkane
: 1ยฐ haloalkane

@Ayano1me @Neetugpoll @Neetugquiz
๐Ÿ•Š1๐Ÿณ1๐Ÿ†1
#PreparationofHaloalkanes
โญ 1๏ธโƒฃ From Alcohols
โœ”๏ธ Using HX
๐Ÿ“Œ Reactivity:
3ยฐ > 2ยฐ > 1ยฐ
โœ”๏ธ Using PClโ‚ƒ / PClโ‚… / SOClโ‚‚
๐Ÿ“Œ SOClโ‚‚ best โ†’ gaseous by-products
โญ 2๏ธโƒฃ From Alkenes
โœ”๏ธ Addition of HX (Markovnikov rule)
โœ”๏ธ Anti-Markovnikov (HBr + peroxide)
โญ 3๏ธโƒฃ From Alkanes
โœ”๏ธ Free radical halogenation
โœ”๏ธ Less selective
โญ 4๏ธโƒฃ Finkelstein Reaction
โœ”๏ธ Rโ€“Cl / Rโ€“Br + NaI (acetone) โ†’ Rโ€“I
โญ 5๏ธโƒฃ Swarts Reaction
โœ”๏ธ Rโ€“Cl / Rโ€“Br โ†’ Rโ€“F
โœ”๏ธ Using AgF / Hgโ‚‚Fโ‚‚
#NEETHOTPOINTS
โœ”๏ธ SN1 โ†’ Carbocation intermediate
โœ”๏ธ SN2 โ†’ Walden inversion
โœ”๏ธ 3ยฐ haloalkane โ†’ SN1 favoured
โœ”๏ธ SOClโ‚‚ โ†’ best for Rโ€“Cl
โœ”๏ธ Anti-Markovnikov โ†’ HBr + peroxide

@Ayano1me @Neetugpoll @Neetugquiz
โค1๐Ÿฅฐ1๐Ÿ˜1๐Ÿ’ฏ1
#Alcohols
Organic compounds containing โ€“OH group attached to spยณ carbon
๐Ÿ“Œ General formula: Rโ€“OH

โญ #PreparationofAlcohols
1๏ธโƒฃ From Alkenes
โœ”๏ธ Acid-catalysed hydration
RCH=CH2+H+/H20 = RCH(OH) -CH3
๐Ÿ“Œ Follows Markovnikovโ€™s rule

Hydroborationโ€“Oxidation
RCH=CH2+BH3/THF, H2O2/OH^- = RCH2-CH2OH
๐Ÿ“Œ Anti-Markovnikov, no rearrangement

2๏ธโƒฃ From Haloalkanes
R-X+Aq KOH= ROH

3๏ธโƒฃ From Aldehydes & Ketones
โœ”๏ธ Reduction using:
NaBHโ‚„
LiAlHโ‚„
๐Ÿ“Œ Aldehyde โ†’ 1ยฐ alcohol
๐Ÿ“Œ Ketone โ†’ 2ยฐ alcohol

4๏ธโƒฃ From Grignard Reagent
RMGX+ HCHO=1ยฐ alcohol
RMGX+ RCHO=2ยฐalcohol
RMGX+R2CO=3ยฐalcohol


#NEETHOTPOINTS (Alcohol)
โœ”๏ธ Hydroboration โ†’ Anti-Markovnikov
โœ”๏ธ NaBHโ‚„ milder than LiAlHโ‚„
โœ”๏ธ Grignard reagent + HCHO โ†’ 1ยฐ alcohol

@Ayano1me @Neetugpoll @Neetugquiz
๐Ÿ”ฅ1๐Ÿ•Š1๐Ÿณ1
Ethers
Organic compounds with โ€“Oโ€“ linkage
๐Ÿ“Œ General formula: Rโ€“Oโ€“Rโ€ฒ

Williamson Ether Synthesis (Very High Yield ๐Ÿ”ฅ)
๐Ÿ“Œ Best method to prepare ethers
RONA+R'X = ROR' + Nax
โœ”๏ธ Involves SN2 mechanism
โœ”๏ธ Best with 1ยฐ haloalkane
โŒ 3ยฐ haloalkane โ†’ Elimination occurs
๐Ÿ“Œ For unsymmetrical ether:
Use bulky group as alkoxide
Smaller group as haloalkane

โญ Reaction of Ether with HI
๐Ÿ“Œ Ether cleavage by HI / HBr
๐Ÿ”น Mechanism
โœ”๏ธ Protonation of ether oxygen
โœ”๏ธ Iโป attacks alkyl group

#CaseWiseReaction

1๏ธโƒฃ Symmetrical Ether
R-O-R+ 2HI = 2RI + H20

2๏ธโƒฃ Unsymmetrical Ether
โœ”๏ธ If one group is 3ยฐ โ†’ Cleavage at 3ยฐ carbon (SN1)
โœ”๏ธ If both are 1ยฐ โ†’ Iโป attacks less hindered carbon (SN2)
๐Ÿ“Œ Example:

CH3-O-C2H5 + HI = Ch3I + C2H5OH

NEETHOTPOINTS (Ether)
โœ”๏ธ Williamson โ†’ SN2 reaction
โœ”๏ธ Best haloalkane โ†’ 1ยฐ
โœ”๏ธ Ether cleavage โ†’ HI > HBr
โœ”๏ธ 3ยฐ ether โ†’ SN1 cleavage
โœ”๏ธ Unsymmetrical ether โ†’ less hindered side breaks

@Ayano1me @Neetugpoll @Neetugquiz
๐Ÿณ2โค1