Q. How many moles are in 88 grams of oxygen (O2)?
Show solution
Solution
Molar mass of O2 = 32 g/mol. Number of moles = mass / molar mass = 88 g / 32 g/mol = 2.75 moles.
Correct Answer:
A
— 2
Learn More →
Q. How many moles of CO2 are produced from the complete combustion of 1 mole of C3H8?
Show solution
Solution
C3H8 + 5O2 → 3CO2 + 4H2O. 1 mole of C3H8 produces 3 moles of CO2.
Correct Answer:
A
— 3
Learn More →
Q. How many moles of KCl are produced when 2 moles of K react with 2 moles of Cl2?
A.
1 mole
B.
2 moles
C.
3 moles
D.
4 moles
Show solution
Solution
The balanced equation is 2K + Cl2 → 2KCl. Therefore, 2 moles of K will produce 2 moles of KCl.
Correct Answer:
B
— 2 moles
Learn More →
Q. How many moles of NaOH are produced when 2 moles of Na react with 2 moles of water?
A.
1 mole
B.
2 moles
C.
3 moles
D.
4 moles
Show solution
Solution
2Na + 2H2O → 2NaOH. Therefore, 2 moles of Na produce 2 moles of NaOH.
Correct Answer:
B
— 2 moles
Learn More →
Q. How many moles of oxygen are required to completely react with 4 moles of ethane (C2H6)?
A.
5 moles
B.
7 moles
C.
8 moles
D.
10 moles
Show solution
Solution
The balanced equation is 2C2H6 + 7O2 → 4CO2 + 6H2O. Therefore, 4 moles of C2H6 require 14 moles of O2, which means 7 moles of O2 for 2 moles of C2H6.
Correct Answer:
B
— 7 moles
Learn More →
Q. Identify the group that shows a -I effect.
A.
-NH2
B.
-CH3
C.
-F
D.
-OCH3
Show solution
Solution
The -F group shows a -I effect as it withdraws electron density through its electronegativity.
Correct Answer:
C
— -F
Learn More →
Q. Identify the hybridization of the central atom in C2H4.
A.
sp
B.
sp2
C.
sp3
D.
dsp3
Show solution
Solution
The central carbon atoms in C2H4 are sp2 hybridized, forming a double bond between them.
Correct Answer:
B
— sp2
Learn More →
Q. Identify the hybridization of the central atom in CO2.
A.
sp
B.
sp2
C.
sp3
D.
dsp3
Show solution
Solution
Carbon in CO2 is sp hybridized, forming two double bonds with oxygen.
Correct Answer:
A
— sp
Learn More →
Q. Identify the hybridization of the central atom in NH3.
A.
sp
B.
sp2
C.
sp3
D.
dsp3
Show solution
Solution
The nitrogen atom in NH3 is sp3 hybridized, forming three bonds and one lone pair.
Correct Answer:
C
— sp3
Learn More →
Q. Identify the hybridization of the nitrogen atom in NH3.
A.
sp
B.
sp2
C.
sp3
D.
dsp2
Show solution
Solution
The nitrogen atom in NH3 is sp3 hybridized, forming three N-H bonds and one lone pair.
Correct Answer:
C
— sp3
Learn More →
Q. Identify the IUPAC name for the compound with the structure CH3-CH(CH3)-C(CH3)2-COOH.
A.
3-Methylbutanoic acid
B.
2-Methylbutanoic acid
C.
3,3-Dimethylbutanoic acid
D.
2,3-Dimethylbutanoic acid
Show solution
Solution
The compound has a carboxylic acid group and a total of 5 carbons with two methyl groups on the third carbon, making it 3,3-Dimethylbutanoic acid.
Correct Answer:
C
— 3,3-Dimethylbutanoic acid
Learn More →
Q. Identify the IUPAC name for the compound with the structure CH3-CH(CH3)-C(CH3)2-CH2-CH3.
A.
2,3-Dimethylpentane
B.
3,3-Dimethylpentane
C.
2-Methylhexane
D.
3-Methylhexane
Show solution
Solution
The longest chain has 5 carbons, and there are two methyl groups on the third carbon, making it 3,3-Dimethylpentane.
Correct Answer:
B
— 3,3-Dimethylpentane
Learn More →
Q. If 0.1 M of a strong acid is mixed with 0.1 M of a strong base, what will be the resulting pH?
Show solution
Solution
Strong acid and strong base neutralize each other, resulting in a neutral solution with pH = 7.
Correct Answer:
B
— 7
Learn More →
Q. If 0.1 M of a weak acid has a pH of 4.0, what is the Ka of the acid?
A.
1 x 10^-4
B.
1 x 10^-5
C.
1 x 10^-6
D.
1 x 10^-7
Show solution
Solution
Using the formula Ka = [H+]^2 / [HA], where [H+] = 10^(-4) M and [HA] = 0.1 M, we find Ka = (10^-4)^2 / 0.1 = 1 x 10^-5.
Correct Answer:
B
— 1 x 10^-5
Learn More →
Q. If 0.5 mol of a non-volatile solute is dissolved in 1 kg of water, what is the vapor pressure lowering? (Vapor pressure of pure water = 23.76 mmHg)
A.
1.88 mmHg
B.
2.88 mmHg
C.
3.88 mmHg
D.
4.88 mmHg
Show solution
Solution
Vapor pressure lowering = (n_solute / n_solvent) * P°_solvent = (0.5 / 55.5) * 23.76 = 1.88 mmHg
Correct Answer:
A
— 1.88 mmHg
Learn More →
Q. If 0.5 moles of a gas occupy 11.2 liters at STP, what is the molar volume of the gas?
A.
22.4 L
B.
11.2 L
C.
5.6 L
D.
44.8 L
Show solution
Solution
At STP, 1 mole of gas occupies 22.4 L. Therefore, the molar volume is 22.4 L.
Correct Answer:
A
— 22.4 L
Learn More →
Q. If 0.5 moles of NaCl are dissolved in 1 liter of water, what is the concentration of NaCl?
A.
0.5 M
B.
1 M
C.
2 M
D.
0.25 M
Show solution
Solution
Concentration (M) = moles of solute / liters of solution = 0.5 moles / 1 L = 0.5 M.
Correct Answer:
A
— 0.5 M
Learn More →
Q. If 0.5 moles of NaCl are dissolved in 1 liter of water, what is the concentration of NaCl in the solution?
A.
0.5 M
B.
1 M
C.
2 M
D.
0.25 M
Show solution
Solution
Concentration (M) = moles of solute / liters of solution = 0.5 moles / 1 L = 0.5 M.
Correct Answer:
A
— 0.5 M
Learn More →
Q. If 0.5 moles of NaCl are dissolved in 1 liter of water, what is the molarity of the solution?
A.
0.5 M
B.
1 M
C.
2 M
D.
0.25 M
Show solution
Solution
Molarity (M) = moles of solute / liters of solution = 0.5 moles / 1 L = 0.5 M.
Correct Answer:
A
— 0.5 M
Learn More →
Q. If 1 L of a 2 M solution is diluted to 3 L, what is the new molarity of the solution?
A.
0.67 M
B.
1 M
C.
1.5 M
D.
2 M
Show solution
Solution
Using the dilution formula M1V1 = M2V2, we have 2 M * 1 L = M2 * 3 L, thus M2 = 2/3 = 0.67 M.
Correct Answer:
A
— 0.67 M
Learn More →
Q. If 1 L of a 3 M solution is diluted to 2 L, what is the new molarity?
A.
1.5 M
B.
3 M
C.
6 M
D.
0.5 M
Show solution
Solution
Using the dilution formula M1V1 = M2V2, we have 3 M × 1 L = M2 × 2 L. Thus, M2 = 1.5 M.
Correct Answer:
A
— 1.5 M
Learn More →
Q. If 1 liter of a 2 M solution is diluted to 3 liters, what is the new molarity?
A.
0.67 M
B.
1 M
C.
1.5 M
D.
2 M
Show solution
Solution
Using the dilution formula M1V1 = M2V2, (2 M)(1 L) = M2(3 L) => M2 = 2/3 = 0.67 M.
Correct Answer:
A
— 0.67 M
Learn More →
Q. If 1 mol of NaCl is dissolved in 1 kg of water, how many particles are present in solution?
Show solution
Solution
NaCl dissociates into 2 ions (Na+ and Cl-), so 1 mol of NaCl produces 2 mol of particles in solution.
Correct Answer:
B
— 2
Learn More →
Q. If 1 mol of NaCl is dissolved in 1 kg of water, what is the expected van 't Hoff factor (i)?
Show solution
Solution
NaCl dissociates into 2 ions (Na+ and Cl-), so the van 't Hoff factor i = 2.
Correct Answer:
B
— 2
Learn More →
Q. If 1 mol of NaCl is dissolved in water, how many particles are present in solution?
Show solution
Solution
NaCl dissociates into 2 ions (Na+ and Cl-), so 1 mol of NaCl results in 2 mol of particles.
Correct Answer:
B
— 2
Learn More →
Q. If 1 mole of a gas occupies 22.4 L at STP, how many liters will 0.5 moles occupy?
A.
11.2 L
B.
22.4 L
C.
44.8 L
D.
5.6 L
Show solution
Solution
Volume = moles x volume per mole = 0.5 moles x 22.4 L/mole = 11.2 L.
Correct Answer:
A
— 11.2 L
Learn More →
Q. If 1 mole of a gas occupies 22.4 L at STP, how much volume will 0.5 moles occupy?
A.
11.2 L
B.
22.4 L
C.
44.8 L
D.
5.6 L
Show solution
Solution
Volume = moles x volume per mole = 0.5 moles x 22.4 L/mole = 11.2 L.
Correct Answer:
A
— 11.2 L
Learn More →
Q. If 1 mole of a non-electrolyte solute is dissolved in 1 kg of water, what is the expected freezing point depression?
A.
-1.86 °C
B.
-3.72 °C
C.
-0.52 °C
D.
-2.00 °C
Show solution
Solution
The freezing point depression is calculated using the formula ΔTf = Kf * m, where Kf for water is 1.86 °C kg/mol.
Correct Answer:
A
— -1.86 °C
Learn More →
Q. If 1 mole of a non-electrolyte solute is dissolved in 1 kg of water, what is the freezing point depression?
A.
0 °C
B.
1.86 °C
C.
3.72 °C
D.
5.58 °C
Show solution
Solution
The freezing point depression is calculated using the formula ΔTf = i * Kf * m. For a non-electrolyte, i = 1, Kf for water = 1.86 °C kg/mol, and m = 1 mol/kg gives ΔTf = 1.86 °C.
Correct Answer:
B
— 1.86 °C
Learn More →
Q. If 1 mole of a non-electrolyte solute is dissolved in 1 kg of water, what is the expected change in freezing point?
A.
0.0 °C
B.
-1.86 °C
C.
-3.72 °C
D.
-5.58 °C
Show solution
Solution
The freezing point depression for 1 mole of a non-electrolyte solute in 1 kg of water is -1.86 °C.
Correct Answer:
B
— -1.86 °C
Learn More →
Showing 151 to 180 of 2802 (94 Pages)
Chemistry Syllabus (JEE Main) MCQ & Objective Questions
The Chemistry Syllabus for JEE Main is crucial for students aiming to excel in their exams. Understanding this syllabus not only helps in grasping fundamental concepts but also enhances performance in objective questions and MCQs. Regular practice with these types of questions is essential for scoring better and mastering important topics.
What You Will Practise Here
Basic Concepts of Chemistry
Atomic Structure and Chemical Bonding
States of Matter: Gases and Liquids
Thermodynamics and Thermochemistry
Equilibrium: Chemical and Ionic
Redox Reactions and Electrochemistry
Hydrocarbons and Environmental Chemistry
Exam Relevance
The Chemistry syllabus is a significant part of CBSE, State Boards, NEET, and JEE exams. Questions from this syllabus often appear in various formats, including multiple-choice questions, assertion-reason type questions, and numerical problems. Familiarity with the common question patterns can greatly enhance your exam preparation and confidence.
Common Mistakes Students Make
Misunderstanding the periodic trends and their implications.
Confusing different types of chemical bonds and their properties.
Neglecting to balance redox reactions properly.
Overlooking the significance of units in thermodynamic calculations.
Failing to apply concepts of equilibrium in problem-solving.
FAQs
Question: What are the key topics I should focus on in the Chemistry syllabus for JEE Main?Answer: Focus on atomic structure, chemical bonding, thermodynamics, and equilibrium as they are frequently tested.
Question: How can I improve my performance in Chemistry MCQs?Answer: Regular practice with past papers and understanding concepts deeply will help you tackle MCQs effectively.
Start your journey towards mastering the Chemistry Syllabus (JEE Main) by solving practice MCQs today. Test your understanding and build confidence for your exams!
