2020 NECO CHEMISTRY OBJ AND ESSAY QUESTIONS AND ANSWERS
Chemistry Objective
1BBDDADEBCA
11BDEABDBCEE
21DEEECCCCEC
31ABDAADCAAB
41EDEDAEADDD
51DBEBABBADA
COMPLETED.
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NECO-CHEMISTRY-ANSWERS
You Are To Answer Four (4) Questions
Only. We Answered. FIVE (5) Pls Answer Four(4). Enjoy And Tell People About Us.
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(3ai)
Cl2(g) + 2NaOH(aq) + Nacl + H2O(l)
[Cold dilute]
3Cl2(aq) + 6NaOH(aq) + 5Nacl(aq) + 3H2O(l)
[Hot Conc.]
(3aii)
Green to Brown
(3bi)
(i)Hard water tastes better due to dissolved minerals in it
(ii)Hard water helps snails and crabs to make their shells
(3bii)
(i)Exhaust of power plants and vehicles
(ii)Gases from chemical warfare
(3biii)
(i)Starch —> Iodine
Fats and oil —> Sudan III
(3ci)
(i)Standard NaOH cannot be accurately prepared because it is deliquescent
(ii)Standard N2SOe cannot be accurately prepared because it is hydroscopic. Both absorb moisture from the atmosphere.
(3cii)
(i)2,2-dibromo-3,3dimethyl-butane
(ii)2-methyl-Hexane
(iii)Pentan-3-one
(iv)Butan-2-one
(3d)
(i)Boyl’s law states that the volume of a given mass of gas is inversely proportional to its pressure, provided the temperature remains constant.
(ii)V1/T1 = V2/T2 i.e V2 = V1T2/T1
= 400 x (273+150)/(273+30)
Volume at 50°c = 400×323/303 = 426.4cm^3
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(1ai)
(i)graphite
(ii)diamond
(1aii)
(i)animal charcoal
(ii)carbon black
(1aiii)
(i)The property of elements are a periodic function of their atomic number
(ii)Elements are arranged in the periodic table according to the order of increasing in their atomic weight.
(1bi)
Periodicity can be defined as the trend or recurring variation in element properties with increasing atomic number.
(1bii)
using; mole = no; of atoms/avogadro’s constant
0.5=no; of atoms/6.023*10²³
no; of atoms = 0.5*6.02*10²³=3.012*10²³atom
(1ci)
Faraday’s first law of electrolysis state that the chemical deposition due to the flow of current through an electrolyte is directly proportional to the quantity of electricity (coulombs) passed through it.
(1cii)
2O²^- + 9^e —>2O²
no; of electron = 4
Q=20300C
G.M.V =22.4dm³.
F=96500C
Mole=Q/n,f
Mole=20300/4*96500
Mole=20300/386000
Mole=0.05mol
Recall; =vol/G.M.V
0.05=vol/22.4
vol=0.05*22.4
vol=1.12dm³
(1di)
Using H²SO⁴
H+ SO⁴^-¹
H+ OH^-
A+ Anode
OH —-> OH + e^-
2OH+(aq)+2OH(aq)—->2H²O(s)+O²(aq)
(1dii)
Tabulate
-Electrolyte- (I)teraoxosulphate(iv)acid
(II)Ester
-non electrolyte-
(III)phenol
(1ei)
(i)mercury
(1eii)
(I)no; of electron in Y =16
(II)no; of mass number =16+18=34
(III)sulphur
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(2ai)
basicity can be defined as the number of replaceable hydrogen ion in an acid
(2aii)
(I) —> 3
(II) —> 1
(III) —> 2
(2bi)
(i)Concentration
(ii)Temperature
(iii)Pressure
(2bii)
(i)Light
(ii)Temperature
(iii)Nature of reactant
(2ci)
Tabulate
S/N; (I), (II)
Indicator; methyl orange, phenolphthalein
Colour in acid; red, colourless
Colour at end point; orange colourless
Colour in base; yellow, pink
Suitable for; strong acid and weak base, weak acid and strong base
(2cii)
(i)Nitrogen —> 1s²,2s²,2p³
(ii)Fluorine —> 1s²,2s²,2p⁵
(iii)Aluminum —> 1s¹,2s²,2p⁶,3s²,3p¹
(2di)
(I)Hydrogen gas is liberated
(II)The purple colour turns colourless
(III)It leads to the deposit of black residue of carbon
(2dii)
(i)It serve as immediate source of energy
(ii)it is used in the manufacture of sweets.
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(4ai)
(I)Burning requires heating while corrosion does not
(II)Boiling occurs at a certain temperature while evaporation occurs at all temperature
(4b)
A concentration solution can be defined as a solution formed when a large quantity of a substance dissolves in a little volume of water
(4bii)
(i)position of ion in electrochemical series
(ii)concentration ion
(iii)nature of electrodes
(4ci)
Al²(SO⁴)³=(27*2)+(32*3)+(16*12) =54+96+192=342glmol
(4cii)
Aluminum teraoxosulphate (iv)
(4ciii)
(i)Propane – 1,2,3,- triol
(ii)Potassium salt
(4di)
Tabulate.
-Soaples detergent-
(i)it does not form scum in hard water
(ii)they are non-biodegradale
-Soapy detergent-
(i)It firm scum in hard water
(ii)They are biodegradable
(4dii)
(i)RCOOH
(ii)ROH
(4diii)
V1=300cm³.
P1=760mmHg
P2=800mmHg,
V2=?
Using; V1*P1 =V2*P2
300*700=V2*300
V2=300*760/800
V2=228000/800
V2=285cm³
(4div)
Its change is +3
(4dv)
Al³^+ (Aluminum ion)
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(5ai)
Coal and coke
(5aii)
(I)acidic — NO² nitrogen (iv) oxide
(II)neutral — NO nitrogen (ii) oxide
(5aiii)
HCOOH. H²SO⁴/H²O CO(g)
46g of HCOOH = 22.4dm³ of CO
600g of HCOOH = X
X= 600*22.4/46=2.92dm³ of CO(s) is produced.
(5bi)
(i)To standardize a solution of an acid or base
(ii)To determine the percentage purity and impurity of an acid of a base
(5bii)
(I)density
(II)solubility
(5ci)
FeCl²(s) + 2NaOH(aq) —-> 2NaCl²(aq) + Fe(OH)²(s)
The main product is sodium chloride and iron (II) hydroxide
(5cii)
(I)FeCl²
(II)iron (ii) chloride
(5di)
(I)it is slightly denser than air
(II)it is slightly soluble in water
(5dii)
Because on exposure to air of rust due to the formation of hydrated iron (iii) oxide. In other words rusting it changes to reddish brown flaky powder is formed with new properties and irrversable permanent change.
Fe(s) + 3O³(g)+ XH²O(s) —> 2Fe²O³ XH²O(s)
(5diii)
Mas of dry hydrogen =35g
Mass of dry hydrogen + oxygen vapour of a compound= 440g
Mass of organic vapour of the compound = 440g-35g=405g
V.D of the vapour =mass of vapour/mass of equal volume of H²
405/35 =11.51 ≅ 11.6
V.D = 11.6
R.m.m of the vapour =V.D *2
11.6*2=23.2
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(6ai)
(I)Efflorescence
(II)Isotope
(III)Isomerism
(6aii)
Kipps apparatus
(6aiii)
(i)Temperature
(ii)Enthalpy change value
(6bi)
Polymerisation can be defined as the arrangement of smaller nuclei to form a large nuclei
(6bii)
(i)Addition polymerisation
(ii)Condensation Polymerisation
(6biii)
OH^- =4.583r10^⁵
Since [H^+] [OH]= 10^-¹⁴
[H^+] [4.583*10^-⁵]=10^-¹⁴
[H^+]=1*10^-¹⁴/4.583*10^-⁵
[H^+]=0.22*10^-⁹
[H^+]=2.2*10^-¹⁰moldm³
Since; PH= – logH^+
PH= – log¹⁰ 2.2*10^-¹⁰
PH=0.34+10
PH=10.34
(6ci)
(I) —-> carbohydrate
(II) —-> R-OH and R-CHO
(6cii)
(I)Brass composition; copper and zinc
-uses of brass-
(i)it is use in making hammers
(ii)it is used in application where low corrosion resistance is required.
(II)steel composition; iron and carbon
-Uses of steel-
(i)it is used on roofs
(ii)it is used as cladding for exterior walls
(6ciii)
(i)Fermentation
(ii)Preparation from ethene
(6iv)
This is because there are on molecules in that can accept protons
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Completed
Categories: NECO
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by Umar Haruna on Jul 25, 2022