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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. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion . If standard free energy change of a reaction is zero , this implies that equilibrium constant of the reaction is unity . Reason . For a reaction in equilibrium , equilibrium constant is always unity . |
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Answer» If both assertion and reason are true, and reason is the true explanation of the assertion . When ` DeltaG^(@) =0, log K=0 :. K=1` Hence, Assertion is correct . Correct R. For a reaction in EQUILIBRIUM , the value of equilibrum constant depends upon the relative amounts of the reactants and products . |
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| 2. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion . The equilibrium constant of a reaction increases if temperature is increased . Reason . The forward reaction becomes faster with increase of temperature . |
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Answer» If both assertion and reason are TRUE, and reason is the true explanation of the assertion . |
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| 3. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion. The equilibrium constant is fixed and characterstic for any given chemical reactionat a specified temperature . Reason . The composition of the final equilibrium mixture at a particular temperature depends upon the starting amount of reactants . |
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Answer» If both assertion and reason are true, and reason is the true explanation of the assertion . |
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| 4. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion.In heterogenous equilibrium , the active massesof oure solidsor oure liquids are taken as constant . Reason. Pure solids and pure liquids have fixed densities and definite molecular masses. |
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Answer» If both ASSERTION and reason are true, and reason is the true EXPLANATION of the assertion . |
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| 5. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion .For the reaction ,N_(2) (g) + 3 H_(2) (g) hArr 2 NH_(3) (g) , " units of " K_(c) = L^(2) mol^(-2) Reason . For the reaction ,N_(2) (g) + 3 H_(2) (g) hArr2 NH_(3) (g), Equilibrium constant , K_(c) - ([NH_(3)]^(2))/([N_(2)][H_(2)]^(3)). |
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Answer» If both assertion and reason are TRUE, and reason is the true explanation of the assertion . ` = (mol L^(-1))^(-2)=L^(2) mol^(-2)` Hence , R is the correct explanation of A. |
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| 6. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion. A reversible reaction cannot be carried out in an open vessel. Reason. When equilibrium is reached , no more vapour are formed . |
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Answer» If both assertion and reason are true, and reason is the true explanation of the assertion . Correct R. Only a gaseous reactantor PRODUCT can escape in an open vessel. |
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| 7. |
In each of the following questions, a statementof Assertion is given followed by a corresponding statementof Reason just below it. Of the statements, mark the correctanswer as Assertion . The vapour pressure of a pure liquid has a fixed value at a particular temperature . Reason . When equilibrium is reached , no more vapour are formed . |
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Answer» If both ASSERTION and REASON are true, and reason is the true explanation of the assertion . |
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| 8. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. Thehighestoxidationstateof Os is + 8. Reason . Osmiumis a 5d- block element . |
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| 9. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion.F is more electronegativethan C1 . Reason . F hashigherelectronaffinitythan C1. |
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| 10. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion . Noblegases havepositiveelectron gainenthalpy. Reason. Noblegases havestableclosedshellelectronicconfiguration . |
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| 11. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. Firstionizationenergy fornitrogen islowerthan thatof oxygen . Reason . Acrossa periodeffectivenuclearchargedecreases. |
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Answer» Correctreason.Nitrogen hasstableexactlyhalf - filledelectronicconfigurationbut oxygendoes nothave. |
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| 12. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. The firstionizationenergyof Be isgreaterthan thatof B. Reason. 2p- Orbitalsis lowerinenergythan 2s- orbital. |
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| 13. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. F atomhas lessnegativeelectrongain enthalpythan C1atom. Reason . Additional electrons arerepelledmore effectivelyby 3p-electronsin C1thanby 2p- electronsin F atom |
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| 14. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. The firstionizationenthalpy ofaluminiumis lowerthan thatof magnesium . Reason. Ionicradius ofof aluminium issmallerthan thatof magnesium . |
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| 15. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion .The ionizationof s- electronrequiresmore energy thanionizationof p- electronof the sameshell Reason. s- electrons arecloser to thenucleusthan p- electronsand henceare morestronglyattractedby thenuclues . |
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| 16. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer asAssertion.The elementwithelectronicconfiguration[Xe]^(54)4f^(1)5d^(1)6s^(2)isd- blockelement Reason . the lastelectronentersthe d-orbital. |
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Answer» Correct reason. The lastelectronentersthe f- blockorbital |
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| 17. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as AssertionNa^(+) and A1^(3+) are isoelectronicbut themagnitude of theionicradiusof A1^(3+) is lessthan thatofNa^(+) Reason. The magnitudeof effectivenuclearcharge ofthe outershellelectronsin A1^(3+) is greaterthan in Na^(+) |
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| 18. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer as Assertion. Whenthe atoms of firsttransitionseriesionize the 4s- orbitalelectronsare ionized beforethe 3d-orbitalelectrons . Reason . Theenergyof 3d- orbital electronis lower than thatof 4s-orbitalelectronic . |
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| 19. |
In each of thefollowingquestionsa Statementof Assertion(A ) isgivenfollowedby acorrespondingstatementof Reason(R ) Justbelow it . Of thestatementmarkthe correctanswer asAssertion .Heliumand beryllimhave similarouterelectronicconfigurationof the typens^(2) Reason . both arechemciallyinert . |
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Answer» Statement -1 isTrue Statement-2 isTrue, Statement-2 iscorrectexplanationfor Statement -5 |
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| 20. |
In each of the following pairs which is more stable: |
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| 21. |
In each of the following pairs which is more stable.: |
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| 22. |
In each of the following pairs of salts, which one is more stable and why ? (i) Ferrous and ferric salts (ii) Cuprous and cupric salts. |
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Answer» Solution :(i) Electronic configuation Fe atom (Z = 26) is `1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(6) 4s^(2)` `:.` Electronic configuration of `Fe^(2+)` ion `= 1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(6)` Electronic configuration of `Fe^(3+) " ion " = 1s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(5)` As half-filled `3d^(5)` configuration is more stable, THEREFORE, ferric salts are more stable then ferrous salts. (ii) Electronic configuration of Cu atom `(Z = 29) = 1s^(2) 2^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(10) 4s^(1)` `:.` Electronic configuration of `Cu^(+) " ion " 1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(10)` Electronic configuration of `Cu^(2+) " ion " = 1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(9)` Although `Cu^(+)` has fully-filled d-orbital, YET cuprous salts are LESS stable. This is because the nuclear charge is not sufficient enough to hold 18 electrons of `Cu^(+)` ion present in the outermost shell. |
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| 23. |
In each of the following pairs of compounds, which will give iodoform test ? (a) Sec-butyl alcohol and tert-butyl alcohol (b) Ethyl alcohol and isopropyl alcohol (c) Formaldehyde and acetaldehyde (d) Methylpropyl ketone and diethyl ketone. |
| Answer» SOLUTION :(i) sec-butyl ALCOHOL (ii) ETHYL alcohol (iii) acetaldehyde (IV) methylpropyl ketone | |
| 24. |
In each of the following pairs of compounds, which one is more covalent and why ? (i) AgCl, AgI (ii) BeCl_(2), MgCl_2 (iii) SnCl_(2), SnCl_(4) (iv) CuO,CuS |
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Answer» Solution :Applying Fajan's rules , the RESULT can be obtained in each CASE as follows : (i) `AgI` is more covalent than `AgCl`. This is because `I^(-)` ion is larger in size than`Cl^(-)` ion and hence `I^(-)` is more polarized than`Cl^(-)`ion. (ii) `BeCl_(2)` is more covalent than `MgCl_(2)`. This is because `Be^(2+)` ion is smallerin size than `MG^(2+)` ion andhence `Be^(2+)` ion has greater polarizing power . (iii) `SnCl_(4)` is more covalent than `SnCl_(2)` . This is because `Sn^(4+)` ion has greater charge and smaller size than `Sn^(2+)` ion and hence `Sn^(4+)` has greater polarizing power. (iv) `CuS` is more covalent than `CuO`. This is because`S^(2-)` ion has larger size than `O^(2-)` ion and hence `S^(2-)` is more polarized than `O^(2-)` ion . |
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| 25. |
In each of the following pairs of compounds, Identify the one with more covalent nature and why ? LiBe and LiI |
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Answer» Solution :According to Fajan's rule, LI I in more covalent than LiBr. Since `I^(-)` is larger in size than `Br^(-)`, the larger sized anion PULLS the CATION EFFECTIVELY towards the nucleus. This results in more polarisation effect . GREATER the polarisation effect greater will be the covalent character . |
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| 26. |
In each of the following pairs of compounds, Identify the one with more covalent nature and why ? LiCl and NaCl |
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Answer» Solution :ACCORDING to Fajan's rule, LICL is more covalnet than NaCl Always the cation of the smaller size causes a great extent of polarisation. Greater the POLARIZATION effect, greater will be the covalent CHARACTER . Since` Li^(+)` is smaller in size than `Na^(+)`, Li possess higher polarization effect which in turn increases the covalnet character. |
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| 27. |
In each of the following pairs of compounds, Identify the one with more covalent nature and why ? FeCl_(2)" and " FeCl_(3) |
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Answer» Solution :According to Fajan's RULE, `FeCl_(3)` is morecovalent than `FeCl_(2)` . If the oxidation stateof the cation is HIGHER, the polarization of anion will be more. Thus more will be covalent NATURE in the bonding of the molecule. |
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| 28. |
In each of the compounds : NaCl, ZnS andCaF_(2) , Write (i) ions occupying thevoids (ii)types of voidsoccupied (iii) fraction of voidsoccupied. |
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Answer» SOLUTION :(a) NaCl = `Na^(+)`ions in all the OCTAHEDRAL voids. (B)` ZNS = Zn^(2+) ` ions in altenate tetrahedral vodis. ( c)`CaF_(2) = F^(-)`ions in all the tetrahedral voids. |
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| 29. |
In each of the compouds : NaCl , ZnS and CaF_2 , write (i) ions occupying the voids (ii)types of voids occupied (iii) fraction of voids occupied. |
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Answer» Solution :(a)`NaCl=Na^+`ions in all the OCTAHEDRAL VOIDS (b)`ZnS=Zn^(2+)` ions in alternate tetrahedral voids (C ) `CaF_2=F^-` ions INALL the tetrahedral voids. |
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| 30. |
In -E effect pi electron from multiple bond migrate to the ……. |
| Answer» SOLUTION :ADJECENT CARBON | |
| 32. |
In Dunna's method, the nitrogen present in the organic compound is converted into.............. . |
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| 33. |
In Duma's method, the gas collected in nitrometer is : |
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Answer» `N_(2)` |
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| 34. |
In Dumas method of estimation of nitrogen 3.88gm compound at 293K temperature and 746mm pressure 1.31 mL N_(2) gas. Calculate percentage of nitrogen. (Aqueor tension 6mm) |
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| 35. |
In Dumas' method for estimation of nitrogen, 0.3g of an organic compound gave 50mL of nitrogen collected at 300K temperature and 715 mm pressure. Calculate the percentage composition of nitrogen in the compound. (Aqueous tension at 300K = 15mm) |
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Answer» SOLUTION :Laboratory temperature `=T_(1) = 300K` `:. p_(1) = (715-15) = 700mm` 22400 mL of `N_(2)` at STP weight = 28g Volume of `N_(2)` at STP `= (p_(1)V_(1))/(T_(1)) XX (273)/(760)` `V= (700 xx 50)/(300) xx (273)/(760) mL` = 41.9 mL Mass of `N_(2)` at STP `= (28 xx 41.9)/(22400)` %N `= (28 xx 41.9)/(22400) xx (100)/(m)` `=(28 xx 41.9 xx 100)/(22400 xx 0.3)` = 17.16% OR %N `= (0.0499 xx p_(1)V_(1))/(m T_(1)) = (0.0499 xx 700 xx 50)/(0.3 xx 300)` = 17.46% |
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| 36. |
In Dumas method for estimation of nitrogen, 0.30g of an organic compound gave 50 mL of nitrogen collected at 300 K and mm pressure. Calculate the percentage composition of nitrogen in the compound (Aqueous tension at 300 K is 15 mm). |
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Answer» Solution :Here, mass of the SUBSTANCE taken = 0.30g Volume of NITROGEN collected = 50 ML, Atmospheric pressure = 715mm Hg Room temperature = 300K Aqueous tension at 300 K = 15mm `:.` Actual pressure of the gas (dry gas) = `715 - 15 = 700mm Hg` Step 1. To convert the volume at experimental conditions to volume at STP. `{:("Experimental values",,"At STP"),(P_(1)=700 mm,,P_(2) = 760 mm),(V_(1) = 50 mL,,V_(2) = ?),(T_(1) = 300 K,,T_(2) = 273 K):}` Substituting these values in the gas equation. `(P_(2)V_(1))/(T_(1)) = (P_(2)V_(2))/(T_(2))`, we get `(700 mm xx 50 mL)/(300 K) = (760 mm xx V_(2) mL)/(273 K)` or `V_(2) = (273 xx 700 xx 50)/(300 xx 760) = 41.9 mL`. Step 2.To convert the volume at STP into mass. According to the definition of GMV, 22400 mL of nitrogen at STP weigh = 28 g `:. 41.9 mL` of nitrogen at STP will weigh `= (28 xx 41.9)/(22400) g` Step 3. To calculate the percentage of nitrogen. Percentage of nitrogen `= ("Mass of "N_(2) " at STP")/("Mass of the substance taken") xx 100 = (28 xx 41.9 xx 100)/(22400 xx 0.3) = 17.46` |
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| 37. |
In Dumas’ method for estimation of nitrogen, 0.3g of an organic compound gave 50mL of nitrogen collected at 300K temperature and 715mm pressure. Calculate the percentage composition of nitrogen in the compound. (Aqueous tension at 300K=15 mm) |
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Answer» 0.228 `" % of " N_2 = (28xx 45.67xx100)/(22,400 xx 0.25)=22.8 ` |
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| 38. |
In Duma's method for estimation of nitrogen, 0.25 g of an organic compound gave 40 mL of nitrogen collected at 300 K temperature and 725 mm pressure. If the aqueous tension at 300 K is 25 mm, the percentage of nitrogen in the compound is |
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Answer» `16.76` `{:(V_(1)=40 mL,V_(2)=?),(P_(1)=(725-25)=700mm,P_(2)=760 mm),(T_(1)=300 K,T_(2)=273 K):}` Byapplying gas equation : `(P_(1)V_(1))/T_(1)=(P_(2)V_(2))/T_(2)` `V_(2)=(P_(1)V_(1)T_(2))/(P_(2)T_(1))` `V_(2)=((700mm)XX(40 mL)xx(273 K))/((760mm)xx(300 K))` `=33.52 mL` `%` of `N=28/22400xx("Volume of "N_(2)" at N.T.P.")/("Mass of compound")XX100` `=28/22400xx((33.52 mL))/((0.25 g))xx100` `=16.76 %` |
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| 39. |
In Duma's method for estimation of nitrogen, 0.25 g of an organic compound gave 40 mLof nitrogen collected at 300 K temperature and 725 mm pressure. If the aqueous tension at 300 K is 25mm, the percentage of nitrogen in the compound is |
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Answer» 16.76 `P_(1) = 725 - 25 = 700 mm, P_(2) = 760 mm` `T_(1) = 300 K, T_(2) = 273 K` `:. V_(2) = (P_(1)V_(1)T_(2))/(P_(2)T_(1)) = (700 xx 40 xx 273)/(760 xx 300) = 33.52 mL` `%N = (28)/(22400) xx (33.52)/(0.25) xx 100 = 16.76` |
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| 40. |
In Duma's method 0.52g of an organic compound on combustion gave 68.6 mL N_(2) at 27^(@)C and 756mm pressure. What is the percentage of nitrogen in the compound? |
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Answer» 0.1222 `V_(2)=?,P_(2)=760MM,T_(2)=273K` `(P_(1)V_(1))/(T_(1))=(P_(2)V_(2))/(T_(2))` At NTP, vol. of `N_(2),V_(2)=(P_(1)V_(1))/(T_(1))*(T_(2))/(P_(2))=(756xx68.6)/(300)xx(273)/(760)` =62.09 mL Percentage of nitrogen in organic compound `=(28)/(22400)xx(V_(2))/(w)xx100=(28)/(22400)xx(62.09)/(0.52)xx100=14.93%` |
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| 41. |
In Dumas method , 0.3 g of an organic compound gave 45 ml of nitrogen at STP. The percentage of nitrogen is |
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Answer» 16.9 |
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| 42. |
In Duma's method, 0.3 g of an organic compound gave 50 cm^(3) of nitrogen collected at 300 K and 715 mm pressure. Calculate the percentage of nitrogen in the compound. Aqueous tension of water at 300 K is 15 mm. |
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Answer» `{:("EXPERIMENTAL Conditions","N.T.P. Conditions"),(V_(1)=50 cm^(3),V_(2)=?),(P_(1)=715-15=700 mm,P_(2)=760 mm),(T_(1)=300 K,T_(2)=273 K):}` `(P_(1)V_(1))/T_(1)=(P_(2)V_(2))/T_(2)` or `V_(2)=(P_(1)V_(1)T_(2))/(T_(1)P_(2))=((700mm)xx(50 cm^(3))xx(273 K))/((300 K)xx(760 mm))=41.9 cm^(3)` Step II. Percentage of NITROGEN `=28/22400xx("Volume of "N_(2)" at N.T.P.")/("MASS of COMPOUND")xx100=28/22400xx41.9/0.3xx100=17.46 %` |
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| 43. |
In Duma's method 0.206 g of an organic compound gave 18.8 cm^(3) of moist N_(2) at 17^(@)C and 760 mm Hg pressure. If aqueous at 17^(@)C is 14.5 mm Hg, calculate the percentage of nitrogen in the given organic compound. |
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Answer» Solution :Mass of ORGANIC compound =0.206 G Calculation of the volume of `N_(2)` at N.T.P. `{:("Experimental Conditions","N.T.P. conditions"),(V_(1)=18.8 cm^(3),V_(2)=?),(P_(1)=(760-14.5)mm Hg,P_(2)=760 mm Hg),(=745.5 mm Hg,),(T_(1)=(273+17)K=290 K,T_(2)=273 K):}` By applying gas EQUATION, `(P_(1)V_(1))/T_(1)=(P_(2)V_(2))/T_(2)` `V_(2)=(P_(1)V_(1)T_(2))/(T_(1)P_(2))=((745.5mmHg)xx(18.8 cm^(3))xx(273 K))/((290 K)xx(760 mm Hg))=17.37 cm^(3)` Step II. Calculation of percentage of nitrogen `22400 cm^(3)` of `N_(2)` at N.T.P. has a mass =28 g `17.37 cm^(3)` of `N_(2)` at N.T.P. has a mass `=((28g)xx(17.37 cm^(3)))/((22400 cm^(3)))=0.0217 g` Percentage of nitrogen `=("Mass of "N_(2)" produced "xx100)/("Mass of organic compound")=((0.0217g)xx100)/((0.206 g))=10.54` |
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| 44. |
In the Duma's method of estimation of nitrogen,the nitrogen,the nitrogen in the organic compound is finally converted into |
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| 45. |
In dry air, lithium and sodium react to give |
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Answer» `Li_(2)O,Li_(3)N,Na_(2)O` |
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| 46. |
In DNA and RNA, nitrogen atom is present in the ring system. Can Kjetdahl. Method be used for the estimation of nitrogen present in these? |
| Answer» Solution :In DNA and RNA, NITROGEN is present in heterocyclic rings, since Kjeldahl method cannot be used to estimate nitrogen present in rings, 920 nad nitro GROUPS because nitrogen present in these system cannot be completely CONVERTED into `(NH_(4))_(2)SO_(4)` during DIGESTION. Therefore, Kjeldahl method cannot be used to estimate nitrogen present in DNA and RNA | |
| 47. |
In DNA and RNA, nitrogen atom is present in the ring system. Can Kjeldahl method be used for the estimation of nitrogen present in these ? Give reasons. |
| Answer» Solution :In DNA and RNA, nitrogen is present in heterocyclic rings. Since Kjeldahl method cannot be USED to ESTIMATE nitrogen present in rings, azo and NTRO groups because nitrogen present in these systems/groups cannot be completely converted into `(NH_(4))_(2)SO_(4)` during digestion. THEREFORE, Kjeldahl method cannot be used to estimate nitrogen present in DNA and RNA. | |
| 48. |
In DNA and RNA, nitrogen atom is predent in the ring system. Can kjeldahl's method be used for the estimation of nitrogen present in these ? Give reasons. |
| Answer» SOLUTION :In both DNA and RNA, the nitrogen atom is present in the heterocyclic RING system. Kjeldahl's method cannot be USED for such compounds. Nitrogen can be estimated by DUMA's method. | |
| 49. |
In dihorane total number of bonding electrons are |
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Answer» 12 |
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| 50. |
In differential extraction method in separating funnel, two layers are there. What is the difference in mix before shaking the solution and at the end time? |
| Answer» Solution :At initial the compound is in aquous layer. At the END TIME the compound is more in upper solvent layer and LESS in aquous layer. | |