Saved Bookmarks
This section includes 7 InterviewSolutions, each offering curated multiple-choice questions to sharpen your Current Affairs knowledge and support exam preparation. Choose a topic below to get started.
| 1. |
SiO_(2) reacts with _____ to form water glass |
|
Answer» `Na_(2) CO_(3)` `SiO_(2) + 2NaOH rarr Na_(2) SiO_(3) + H_(2)O` `SiO_(2) + Na_(2) CO_(3) rarr Na_(2) SiO_(3) + CO_(2) uarr` |
|
| 2. |
SiO_2 is a solid while CO_2 is a gas - explain. |
|
Answer» `SiO_(2)` contains WEAK vander Waal attraction while `CO_(2)` contains strong covalent BONDS |
|
| 3. |
SiO_(2) is solid while CO_(2) is a gas at ordinary temperature. Explain. |
|
Answer» `SiO_(2)`contains weak vander Waal ATTRACTION while `CO_(2)`contains strong covalent bonds |
|
| 4. |
SiO_(2) + A rarr x + y . In this reaction 'Y' is one of the global warming gases.'A' is the water soluble alkali metal carbonate . Whose molecular weight is 106.The common name of 'x' is |
|
Answer» FLINT glass |
|
| 6. |
Simplest alkene (A) reacts with HCl to form compound (B). Compound (B) reacts with ammonia to form compound (C) of molecular formula C_(2)H_(7)N. Compound (C) undergoes carbylamine test. Identify (A), (B), and (C). |
|
Answer» Solution :`UNDERSET("(A) Ethene")(CH_(2)=CH_(2))+HCl to underset("(B) Chloroethane")(CH_(3)-CH_(2)Cl)` `underset("(B) Chloroethane")(CH_(3)CH_(2)Cl)+NH_(3) to underset("(C) amine")(CH_(3)CH_(2)NH_(2))` A `CH_(2)=CH_(2)`Ethene B `CH_(3)CH_(2)Cl`Chloroethane C `CH_(3)CH_(2)NH_(2)`ETHYLAMINE. |
|
| 7. |
Simplest alkene (A) reacts with HCl to form compound (B).Conmpound (B) reacts with ammonia to form compound (C) of molecular formula C_2H_7N. Conpound (C) undergoes carbylamine test. Identify (A). (B), and (C). |
Answer» Solution : (i)The simplest alkene (A) is `CH_2 = CH_2`, ethene. (II) Ethene reacts with HCl to GIVE Chloroethane `CH_3 - CH_2Cl` as (B) by addition reaction. `CH_2 = CH_2 + HCl to underset("Chloroethane (B)")(CH_3 - CH_2Cl)` (iii) Chloroethane reacts with ammonia to give Ethylamine `CH_3 - CH_2" " NH_2` as (C ). It is a primary amine and Carbylamine test is the characteristic test for `1^@` amine. `CH_3-CH_2Cl + NH_3 to underset("ETHYL amine (or) Aminocthane")(CH_3 - CH_2NH_2) + HCl` 
|
|
| 8. |
Simple distillation of liquids involves simultaneouly |
|
Answer» VAPORISATION and condensation |
|
| 9. |
similar to % labelling of oleum ,amixture of H_(3)PO_(3) and P_(4)O_(6)is labelled as (100 +x)% where x is maximum mass of water which can reacts with P_(4)O_(6) present in 100 gm mixture of H_(3)PO_(3) and P_(4)O_(6) P_(4)O_(6) + H_(3) |
|
Answer» 1.25 atm |
|
| 10. |
Similarity in the radius of Zr and Hf is explained on the basis of |
|
Answer» Lanthanide contraction |
|
| 11. |
Similar to electron diffraction, neutron diffraction microscope is also used for the determination of the structure of the molecules. If the wavelength used here is 800 pm, calculate the characteristic velocity associated with the neutron. |
|
Answer» Solution :MASS of neutron `= 1.675 xx 10^(-27) KG` `lamda = (H)/(mv) or v = (h)/(m xx lamda) = (6.626 xx 10^(-34) kg m^(2) s^(-1))/(1.675 xx 10^(-27)kg xx (800 xx 10^(-12) m)) = 4.94 xx 10^(4) ms^(-1)` |
|
| 12. |
Silverpropionate when refluxed with Bromine in carbotetrachloride gives |
| Answer» Solution :bromo ethane | |
| 13. |
Silver salt of which of the following acids on treatment with bromine will form 2-bromopropane ? |
|
Answer» Propanoic acid |
|
| 14. |
Silver salt of fatty acid is converted to bromo alkane by …………….. . |
| Answer» SOLUTION :Hunsdicker REACTION | |
| 15. |
Silver propionate when refluxed with Bromine in carbon tetrachloride give ………………. . |
|
Answer» propionic acid |
|
| 16. |
Silver nitrate test is used to detect the presence of ............... . |
| Answer» SOLUTION :HALOGENS | |
| 17. |
Silver metal crystallises with a face-centred cubic lattice. The length of the unit cell is found to be 3.0 xx 10^(-8) cm. Calculate the atomic radius and density of silver. (Molar mass of Ag = 108 g mol^(-1), N_A =6.02xx 10^23mol^(-1)) |
|
Answer» `rho=(ZxxM)/(a^3xxN_A)=(4xx108)/((3.0xx10^(-8))^3xx(6.02xx10^23))=26.6 "G cm"^(-3)` |
|
| 18. |
Silver, mercury (our) and lead are grouped toether in the same group of qualitative analysis because they form: |
|
Answer» nitrates |
|
| 19. |
Silver is not produced when: |
|
Answer» `AgNO_(3)` solution is treated with CU rod |
|
| 20. |
Silver ions react with chloride ions Ag^(+)(aq)+Cl^(-)(aq)toAgCl(s) 5cm^(3) of a 0.1mol/cm^(3) solution of the chloride of metal X needs 10cm^(3) of 0.1 mol/cm^(3) silver nitrate for complete reaction. What is the formula of the chloride- |
|
Answer» `XCl_(4)` |
|
| 21. |
Silver iodide is used for producing artificial rains because Agl: |
|
Answer» is easy to SPRAY at HIGH altitude |
|
| 22. |
Silver iodide is used for producing artificial rain because Ag_(2)I |
|
Answer» is easy to spray at high altitudes |
|
| 23. |
Silver iodide is used for producing artifical rain because AgI |
|
Answer» is easy tospray at HIGH altitude |
|
| 24. |
Silver forms ccp lattice and X-ray studies of its crystals show that the edge length of its unit cell is 408.6pm. Calculate the density of silver (Atomic mass =107.9 u) |
|
Answer» Solution :`rho=(ZxxM)/(a^3xxN_0)` For CCP lattice (which is EQUIVALENT to fcc lattice ), Z=4 ATOMS/unit cell Also we are GIVEN that `M=107.9 g mol^(-1)` a=408.6 pm=`408.6xx10^(-12)` cm `therefore rho=(4 "atoms"xx107.9g mol^(-1)) /((408.6xx10^(-12)cm)^3 (6.022xx10^23 "atoms mol"^(-1))=10.5 g cm^(-3)` |
|
| 25. |
Silver forms ccp lattice and X-ray studies of its crystals show that the edge length of its unit cell is 408.6 pm, Calculate the density of sliver ( Atomic mass = 107.9 u) |
|
Answer» Solution :`p= (Z xx M)/(a^(3) xxN_(0))` For ccp lattic ( whichh is equivalent to fcc lattice) , Z= 4 atoms/ unit cell. Also we are given that M= 107.9 g ` mol^(-1)` a = 408. 6 pm = ` 408.6 xx 10^(-12)cmtherefore p = (4 "atoms" xx 107.9"g mol"^(-1))/((408.6 xx 10^(12)CM)^(3) (6.022 xx 10^(23) " atoms mol"^(-1))) = 10.5 " g cm" ^(-3)` |
|
| 26. |
Silver crystallises with face-centred cubic unit cells. Each side of the unit cell has a length of 409 pm. What is the radius of an atom of sliver ? ( Assume that each face atom is touching the four corner atoms). |
| Answer» SOLUTION :For face-centred cubic unit cell of an ELEMENT , ` r = a/(2SQRT2) = 0.3535a= 0.3535 xx 409 "PM" = 144.6 "pm" ` | |
| 27. |
Silver crystallises with face-centred cubic unit cells. Each side of the unit cell has a length of 409 pm . What is the radius of an atom of silver ? (Assume that each face atom is touching the four corner atoms ) |
| Answer» SOLUTION :For face-centred cubic UNIT of an ELEMENT , `r=a/(2sqrt2)` = 0.3535 a = 0.3535 x 409 PM =144.6 pm | |
| 28. |
Silver crystallises in fcc lattice. If the edge length of the cell is 4.077xx10^(-8) cmand density is 10.5 "g cm"^(-3), calculate the atomic mass of silver. |
| Answer» Solution :`M=(rhoxxa^3xxN_0)/Z=(10.5 "G CM"^(-3) XX (4.077xx10^(-8) cm)^3 xx(6.02xx10^23 "mol"^(-1)))/4=107.09 "g mol"^(-1)` | |
| 29. |
Silver crystallises in fcc lattice. If the edge length of the cell in4.077 xx 10^(-8) cm and densityis 0.5 g cm^(-3) , calculate the atomic mass of silver. |
| Answer» SOLUTION : ` M =( p xx a^(3) xx N_(0))/ Z = ( 10.5 " g cm"^(-3) xx ( 4.077 xx 10^(-8) cm)^(3) xx(6.02 xx 10^(23) "MOL"^(-1)))/4 = 107.09 " g mol"^(-1)` | |
| 30. |
Silver containing lead asan impurity is purified by |
|
Answer» Poling |
|
| 31. |
Silver chloride was prepared in two ways : (i) 0.5 g of a silver wire was dissolved in concentrated nitric acid and the excess of hydrochloric acid was added to it. The precipitate of silver chloride was separated by filtration, washed, dried and then weighed. The weight of the residue was found to be 0.66 g (ii) In another experiement, 1g of silver metal was heated in a current of chlorine till it was completely converted into its chloride which was found to weight 1.32 g Show that the data is according to the Law of Constant composition. |
|
Answer» Solution :In the first experiment Mass of SILVER = 0.5 G , Mass of silver chloride = 0.66 g PERCENTAGE of silver `= ((0.50g))/((0.66g))xx100=75.76%` Percentage of CHLORINE `= 100 -75.76 = 24.24 %` In the second experiment Mass of silver = 1.0 g , Mass of silver chloride = 1.32 g Percentage of silver `= ((1.0g))/((1.32g))xx100=75.76%` percentage of chlorine `= 100 - 75.76 = 24.24 %` The results are in accordance with the LAW of Constant Composition. |
|
| 32. |
Silver acetate +I_(2) overset(CS_(2))rarr the main prodcut of this reaction is |
|
Answer» `CH_(3)I` `CH_(3)I + AgOCOH_(3) rarr UNDERSET("Methyl ACETATE")(CH_(3)COOCH_(3))` |
|
| 33. |
Silicones contain silicon strongly bonded to _ and __atoms. |
|
Answer» C, O |
|
| 34. |
Silicones are used |
|
Answer» as CONDUCTORS |
|
| 35. |
Silicones are used as water proof materials because they have |
|
Answer» hydrophobic ALKYL groups |
|
| 36. |
Silicones are the polymers formed by hydrolysis of |
|
Answer» Silicondioxide |
|
| 37. |
Silicones are also referred to as ............ polymers because they have very high ......... . |
| Answer» SOLUTION :HIGH TEMPERATURE THERMAL STABILITY | |
| 38. |
Silicone oil is obtained from the hydrolysis and polymerization of |
|
Answer» trimethychlorosilane and dimethyldichloro-silane |
|
| 39. |
Silicon tetrachloride readily undergoes hydrolysis but carbon tetrachloride does not undergo hydrdolysis undergo normal conditions. Explain. |
Answer» Solution :Since carbon (of second PERIOD) has no vacant d-orbital, its maximum covalency is 4, on the other hand, silicon (of third period) has vacant d-orbitals and its maximum covalency is 6. as Si-atom can extend its covalency to 6, `SiCl_(6)` UNDERGOES ready hyrolysis to YIELD `SiO_(2)`. A lone pair fo electrons from the O- atom of `H_(2)overset(..)(O)` is donated to the empty di-orbitals of Si, forming a co-ordinate intermediate which has a trigonal bipyramidal structural. the intermediate `[SiCl_(4)(H_(2)O)]` loses a molecule of HCl to form `SiCl_(3)(OH)`. in the same way, the other 3Cl-atoms are replaced by 3-OH groups to form ortho-silicic acid `[Si(OH)_(4)]` which finally loses 2 molecules of water to give `SiO_(2)`.  C-atom having no d-orbitals in its valence in its valence shell cannot extend its covalency beyond 4 and so it does not undergo hydrolysis undre normal conditions. |
|
| 40. |
Silicon is use as ……. |
|
Answer» seal |
|
| 41. |
Silicon has a strong tendency to form polymerslike silicones. The chainlength of silicanepolymer can becontrolled by adding |
| Answer» Solution :Chainof siliconpolyme can be controlled by adding `(CH_(3))_(3)SiCl`. | |
| 42. |
Silicon has a strong tendency to form polymers like silicones. The chain length of silicone polymer can be controlled by adding …… |
|
Answer» `MeSiCl_3` 
|
|
| 43. |
Silicon has 4 electrons in the outermost orbit. In forming the bonds. |
|
Answer» It GAINS electrons |
|
| 44. |
Silicon has 4 electrons in the outermost orbit. In forming the bonds, |
|
Answer» It gains electrons |
|
| 45. |
Silicon dopend with electron-rich impurity forms……. |
|
Answer» p-type SEMICONDUCTOR |
|
| 46. |
Silicon doped with electron-rich impurity forms ______ |
|
Answer» p-type SEMICONDUCTOR |
|
| 47. |
Silicon carbide is used as |
|
Answer» dehydrating AGENT |
|
| 49. |
Silicanes are few in numberwhereasalkanes are large in number. Explain |
|
Answer» Solution :Carbon has the MAXIMUM tendency for catenation due to stronger `C-C (348kJ "mol"^(-1))`bonds. Asa RESULT, it formsa largenumber of ALKANES. Silicon, on the other hand, due to other hand, due to weaker `Si-Si(297 KJ mol^(-1))`bonds has muchlesser tendency for catenationand henceforms only a few silanes. |
|