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Page 1 CBSE XI | Chemistry Sample Paper – 3 Solution CBSE Class XI Chemistry Sample Paper – 3 Solution Section A 1. HI>HBr>HCl>HF 2. BeCl2: Linear SiCl4: Tetrahedral OR The electron pairs involved in the bond formation are known as bond pairs or shared pairs. 3. IUPAC name of allyl alcohol: Prop-2-en-1-ol 4. The amount of oxygen required by bacteria to breakdown the organic matter present in a certain volume of a sample of water is called biochemical oxygen demand. OR Carboxyhaemolobin is the compound formed when CO combines with blood. 5. Sodium (Na) – Yellow Poassium (K) - Violet Section B 6. Metallic character decreases and non metallic character increases in moving from left to right in a period. This is due to increase in ionization enthalpy and electron gain enthalpy. 7. Increasing order of size: Al 3+ < Mg 2+ < Na + < F - < O 2- This is an isoelectronic series i.e. the number electrons are the same in all the elements. Thus, as the effective nuclear charge decreases, electrons are held away from the nucleus and thus size increases. 8. Given: Velocity of electron = 2.07×10 7 m/s Mass of electron = 9.1×10 -31 kg We know, Page 2 CBSE XI | Chemistry Sample Paper – 3 Solution CBSE Class XI Chemistry Sample Paper – 3 Solution Section A 1. HI>HBr>HCl>HF 2. BeCl2: Linear SiCl4: Tetrahedral OR The electron pairs involved in the bond formation are known as bond pairs or shared pairs. 3. IUPAC name of allyl alcohol: Prop-2-en-1-ol 4. The amount of oxygen required by bacteria to breakdown the organic matter present in a certain volume of a sample of water is called biochemical oxygen demand. OR Carboxyhaemolobin is the compound formed when CO combines with blood. 5. Sodium (Na) – Yellow Poassium (K) - Violet Section B 6. Metallic character decreases and non metallic character increases in moving from left to right in a period. This is due to increase in ionization enthalpy and electron gain enthalpy. 7. Increasing order of size: Al 3+ < Mg 2+ < Na + < F - < O 2- This is an isoelectronic series i.e. the number electrons are the same in all the elements. Thus, as the effective nuclear charge decreases, electrons are held away from the nucleus and thus size increases. 8. Given: Velocity of electron = 2.07×10 7 m/s Mass of electron = 9.1×10 -31 kg We know, CBSE XI | Chemistry Sample Paper – 3 Solution 34 31 7 11 h mv 6.63 10 9.1 10 2.05 0.5 10 3.55 10 m ? ? ? ?? ? ? ? ? ? ? ?? 9. Given: Pressure P = 5 bar Molar mass of nitrogen M = 28 g/mol Density of nitrogen, ? ? PM RT Density of gaseousoxideis, 0.987 5 x 0.987 5 28 273 0.0821 273 0.0821 0.987 5 28 273 0.0821 X 273 0.0821 0..987 5 70 ?? ?? ?? ? ?? ? ? ? ? ? ? ? ? ? The molar mass of the oxide is 70 g/mol 10. 2H2O+ 2 F2 ? 4HF+ O2 In this reaction H2O is getting oxidized to O2 and F2 is getting reduced to F - ion. Therefore, F2 is the oxidizing agent and H2O is reducing agent. OR (a) PbS(g) + H2O2(aq) ? PbSO 4(s) + 4H2O(l) (b) CO(g) + 2 H2(g) Cobalt catalyst ? ? ? ? CH 3OH 11. Given: No. Nuclei No. of protons No. of neutrons 1 56 26 Fe 26 30 2 88 38 Sr 38 50 Page 3 CBSE XI | Chemistry Sample Paper – 3 Solution CBSE Class XI Chemistry Sample Paper – 3 Solution Section A 1. HI>HBr>HCl>HF 2. BeCl2: Linear SiCl4: Tetrahedral OR The electron pairs involved in the bond formation are known as bond pairs or shared pairs. 3. IUPAC name of allyl alcohol: Prop-2-en-1-ol 4. The amount of oxygen required by bacteria to breakdown the organic matter present in a certain volume of a sample of water is called biochemical oxygen demand. OR Carboxyhaemolobin is the compound formed when CO combines with blood. 5. Sodium (Na) – Yellow Poassium (K) - Violet Section B 6. Metallic character decreases and non metallic character increases in moving from left to right in a period. This is due to increase in ionization enthalpy and electron gain enthalpy. 7. Increasing order of size: Al 3+ < Mg 2+ < Na + < F - < O 2- This is an isoelectronic series i.e. the number electrons are the same in all the elements. Thus, as the effective nuclear charge decreases, electrons are held away from the nucleus and thus size increases. 8. Given: Velocity of electron = 2.07×10 7 m/s Mass of electron = 9.1×10 -31 kg We know, CBSE XI | Chemistry Sample Paper – 3 Solution 34 31 7 11 h mv 6.63 10 9.1 10 2.05 0.5 10 3.55 10 m ? ? ? ?? ? ? ? ? ? ? ?? 9. Given: Pressure P = 5 bar Molar mass of nitrogen M = 28 g/mol Density of nitrogen, ? ? PM RT Density of gaseousoxideis, 0.987 5 x 0.987 5 28 273 0.0821 273 0.0821 0.987 5 28 273 0.0821 X 273 0.0821 0..987 5 70 ?? ?? ?? ? ?? ? ? ? ? ? ? ? ? ? The molar mass of the oxide is 70 g/mol 10. 2H2O+ 2 F2 ? 4HF+ O2 In this reaction H2O is getting oxidized to O2 and F2 is getting reduced to F - ion. Therefore, F2 is the oxidizing agent and H2O is reducing agent. OR (a) PbS(g) + H2O2(aq) ? PbSO 4(s) + 4H2O(l) (b) CO(g) + 2 H2(g) Cobalt catalyst ? ? ? ? CH 3OH 11. Given: No. Nuclei No. of protons No. of neutrons 1 56 26 Fe 26 30 2 88 38 Sr 38 50 CBSE XI | Chemistry Sample Paper – 3 Solution 12. Molar mass of methanol (CH3OH) = 32 g/mol = 0.032 kg/mol Molarity of solution = 0.793 0.032 24.78mol / l ? ? We have, M1V1 = M2V2 24.78 × V1 = 0.25 × 2.5 V1 = 25.22 ml The required volume is 25.22 ml OR Given: M= 3 mol/lit Mass of NaCl in 1 litre solution = 3×58.5 = 175.5 g Mass of water in solution = 1000 × 1.25 = 1250 g Mass of water in solution = 1250- 175.5 = 1074.5 g Molarity Number of moles of solute Massof solvent in kg 3 1.074 2.79m ? ? ? Page 4 CBSE XI | Chemistry Sample Paper – 3 Solution CBSE Class XI Chemistry Sample Paper – 3 Solution Section A 1. HI>HBr>HCl>HF 2. BeCl2: Linear SiCl4: Tetrahedral OR The electron pairs involved in the bond formation are known as bond pairs or shared pairs. 3. IUPAC name of allyl alcohol: Prop-2-en-1-ol 4. The amount of oxygen required by bacteria to breakdown the organic matter present in a certain volume of a sample of water is called biochemical oxygen demand. OR Carboxyhaemolobin is the compound formed when CO combines with blood. 5. Sodium (Na) – Yellow Poassium (K) - Violet Section B 6. Metallic character decreases and non metallic character increases in moving from left to right in a period. This is due to increase in ionization enthalpy and electron gain enthalpy. 7. Increasing order of size: Al 3+ < Mg 2+ < Na + < F - < O 2- This is an isoelectronic series i.e. the number electrons are the same in all the elements. Thus, as the effective nuclear charge decreases, electrons are held away from the nucleus and thus size increases. 8. Given: Velocity of electron = 2.07×10 7 m/s Mass of electron = 9.1×10 -31 kg We know, CBSE XI | Chemistry Sample Paper – 3 Solution 34 31 7 11 h mv 6.63 10 9.1 10 2.05 0.5 10 3.55 10 m ? ? ? ?? ? ? ? ? ? ? ?? 9. Given: Pressure P = 5 bar Molar mass of nitrogen M = 28 g/mol Density of nitrogen, ? ? PM RT Density of gaseousoxideis, 0.987 5 x 0.987 5 28 273 0.0821 273 0.0821 0.987 5 28 273 0.0821 X 273 0.0821 0..987 5 70 ?? ?? ?? ? ?? ? ? ? ? ? ? ? ? ? The molar mass of the oxide is 70 g/mol 10. 2H2O+ 2 F2 ? 4HF+ O2 In this reaction H2O is getting oxidized to O2 and F2 is getting reduced to F - ion. Therefore, F2 is the oxidizing agent and H2O is reducing agent. OR (a) PbS(g) + H2O2(aq) ? PbSO 4(s) + 4H2O(l) (b) CO(g) + 2 H2(g) Cobalt catalyst ? ? ? ? CH 3OH 11. Given: No. Nuclei No. of protons No. of neutrons 1 56 26 Fe 26 30 2 88 38 Sr 38 50 CBSE XI | Chemistry Sample Paper – 3 Solution 12. Molar mass of methanol (CH3OH) = 32 g/mol = 0.032 kg/mol Molarity of solution = 0.793 0.032 24.78mol / l ? ? We have, M1V1 = M2V2 24.78 × V1 = 0.25 × 2.5 V1 = 25.22 ml The required volume is 25.22 ml OR Given: M= 3 mol/lit Mass of NaCl in 1 litre solution = 3×58.5 = 175.5 g Mass of water in solution = 1000 × 1.25 = 1250 g Mass of water in solution = 1250- 175.5 = 1074.5 g Molarity Number of moles of solute Massof solvent in kg 3 1.074 2.79m ? ? ? CBSE XI | Chemistry Sample Paper – 3 Solution Section C 13. We know, ? ? ? ? ? ? ? ? 18 2 n 2 18 2 1 2 18 2 n 2 n 2.18 10 Z E n For He , n 1, n 2 2.18 10 2 E 1 8.72 10 J 0.0529 n r Z Here,n 1, Z 2 0.0529 1 r 2 0.02645nm ? ? ? ? ?? ? ?? ?? ? ? ? ? ? ?? ? ? Energy is 8.72 ×10 -18 J Radius of the orbit is 0.02645 nm OR Let us find out the atomic number of element. Let the number of protons = x ? ? x 31.7 Number of neutrons x 100 x 0.317x Massno.of element No.of protons No.of neutrons 81 x x 0.317x 81 2.317x x 35 No.of protons 35 No. of neutrons 81 35 46 Atomic numer of element is 35 ? ?? ?? ?? ? ? ? ? ? ?? ?? ? The element with atomic number 35 is bromine (Br). Page 5 CBSE XI | Chemistry Sample Paper – 3 Solution CBSE Class XI Chemistry Sample Paper – 3 Solution Section A 1. HI>HBr>HCl>HF 2. BeCl2: Linear SiCl4: Tetrahedral OR The electron pairs involved in the bond formation are known as bond pairs or shared pairs. 3. IUPAC name of allyl alcohol: Prop-2-en-1-ol 4. The amount of oxygen required by bacteria to breakdown the organic matter present in a certain volume of a sample of water is called biochemical oxygen demand. OR Carboxyhaemolobin is the compound formed when CO combines with blood. 5. Sodium (Na) – Yellow Poassium (K) - Violet Section B 6. Metallic character decreases and non metallic character increases in moving from left to right in a period. This is due to increase in ionization enthalpy and electron gain enthalpy. 7. Increasing order of size: Al 3+ < Mg 2+ < Na + < F - < O 2- This is an isoelectronic series i.e. the number electrons are the same in all the elements. Thus, as the effective nuclear charge decreases, electrons are held away from the nucleus and thus size increases. 8. Given: Velocity of electron = 2.07×10 7 m/s Mass of electron = 9.1×10 -31 kg We know, CBSE XI | Chemistry Sample Paper – 3 Solution 34 31 7 11 h mv 6.63 10 9.1 10 2.05 0.5 10 3.55 10 m ? ? ? ?? ? ? ? ? ? ? ?? 9. Given: Pressure P = 5 bar Molar mass of nitrogen M = 28 g/mol Density of nitrogen, ? ? PM RT Density of gaseousoxideis, 0.987 5 x 0.987 5 28 273 0.0821 273 0.0821 0.987 5 28 273 0.0821 X 273 0.0821 0..987 5 70 ?? ?? ?? ? ?? ? ? ? ? ? ? ? ? ? The molar mass of the oxide is 70 g/mol 10. 2H2O+ 2 F2 ? 4HF+ O2 In this reaction H2O is getting oxidized to O2 and F2 is getting reduced to F - ion. Therefore, F2 is the oxidizing agent and H2O is reducing agent. OR (a) PbS(g) + H2O2(aq) ? PbSO 4(s) + 4H2O(l) (b) CO(g) + 2 H2(g) Cobalt catalyst ? ? ? ? CH 3OH 11. Given: No. Nuclei No. of protons No. of neutrons 1 56 26 Fe 26 30 2 88 38 Sr 38 50 CBSE XI | Chemistry Sample Paper – 3 Solution 12. Molar mass of methanol (CH3OH) = 32 g/mol = 0.032 kg/mol Molarity of solution = 0.793 0.032 24.78mol / l ? ? We have, M1V1 = M2V2 24.78 × V1 = 0.25 × 2.5 V1 = 25.22 ml The required volume is 25.22 ml OR Given: M= 3 mol/lit Mass of NaCl in 1 litre solution = 3×58.5 = 175.5 g Mass of water in solution = 1000 × 1.25 = 1250 g Mass of water in solution = 1250- 175.5 = 1074.5 g Molarity Number of moles of solute Massof solvent in kg 3 1.074 2.79m ? ? ? CBSE XI | Chemistry Sample Paper – 3 Solution Section C 13. We know, ? ? ? ? ? ? ? ? 18 2 n 2 18 2 1 2 18 2 n 2 n 2.18 10 Z E n For He , n 1, n 2 2.18 10 2 E 1 8.72 10 J 0.0529 n r Z Here,n 1, Z 2 0.0529 1 r 2 0.02645nm ? ? ? ? ?? ? ?? ?? ? ? ? ? ? ?? ? ? Energy is 8.72 ×10 -18 J Radius of the orbit is 0.02645 nm OR Let us find out the atomic number of element. Let the number of protons = x ? ? x 31.7 Number of neutrons x 100 x 0.317x Massno.of element No.of protons No.of neutrons 81 x x 0.317x 81 2.317x x 35 No.of protons 35 No. of neutrons 81 35 46 Atomic numer of element is 35 ? ?? ?? ?? ? ? ? ? ? ?? ?? ? The element with atomic number 35 is bromine (Br). CBSE XI | Chemistry Sample Paper – 3 Solution 14. The balanced chemical equation is 22 2CO O 2CO 2mol 1mol 2x22.4L 22.4L ? ? ? ? Volume of oxygen required to convert 2 x 22.4 L of CO at N.T.P. = 22.4 L Volume of oxygen required to convert 5.2 L of CO at N.T.P. = xL x 22.4 5.2 2.6 2 22.4 ? OR (i) H2 + is more stable than H2 - as it contains no electron in antibonding MO while latter contains an electron in antibonding MO making it less st (ii) PCl5 contains axial and equatorial bonds. Axial bonds are longer than equatorial bonds as they face more repulsion from equatorial bonds. Hence axial bonds are weaker than equatorial bonds. (iii) NaI is more covalent due to high polarizability of iodide ion due to its bigger size than chloride ion. 15. (i) This is due to the reason that the molecules which undergo evaporation are high energy molecules and therefore, the kinetic energy of the remaining molecules becomes less. Since the remaining molecules have lower average kinetic energy, their temperature becomes low. (ii) This is due to surface tension of liquids. Due to surface tension, the molecules of a liquid, try to make surface area to be minimum and for a given volume, sphere has the minimum surface area. Therefore the falling liquid drops are spherical. (iii) Intermolecular forces are stronger in acetone than in ether. Thus the vapour pressure of acetone is less than ether.Read More
1. What is the atomic number of an element? |
2. How is the atomic mass of an element calculated? |
3. What is the difference between a physical change and a chemical change? |
4. How is the valency of an element determined? |
5. What is the difference between an element and a compound? |
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