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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. |
The period in which s-block, p-block and d- block elements are present |
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Answer» 1 |
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| 2. |
The period in which only single block elements are present by definition |
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Answer» 6 |
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| 3. |
The percentages of all the elements present in a compound are 92. What does it indicate ? |
| Answer» SOLUTION :This indicates that the compound contains in it OXYGEN ALSO and its PERCENTAGE is (100-92)=8 | |
| 4. |
The percentage weight of hydrogen in H_(2)O_(2) |
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Answer» 5.88 |
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| 5. |
The percentage proportion of C, H and N in an organic compound are 62.07, 10.34 and 14.0 respectively. Find its empirical formula. |
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Answer» `C_(2)H_(5)NO_(2)`  (D) `C_(5)H_(10)NO` accurate `C_(6)H_(12)NO`..........No OPTION |
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| 6. |
The percentage to deuterium in heavy water is |
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Answer» 22.2 |
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| 7. |
The percentage of silica in sodium silicate is approximately (Si=28) |
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Answer» 25 |
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| 8. |
Thepercentage of s-character of the hybrid orbitals in methane, ethane, ethene and ethyne are respectively |
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Answer» `25, 25,33.3, 50` |
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| 9. |
The percentage of s-character of the hybrid orbitals in methane, ethane, ethene and ethyne are respectively …………………. |
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Answer» `25, 25, 33.3, 50` |
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| 10. |
The percentage of pyridine (C_(5)H_(5)O) that forms pyridinium ion (C_(5)H_(5) overset(+)NH)in a 0.10 M aqueons pyridine solution is (K_(b) for C_(5)H_(5)N=1.7 xx 10^(-9)) |
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Answer» 0.0077 `{:(,C_(5)H_(5)N+H_(2)O hArr C_(5)H_(5)overset(+)NH+OH^(-)),("Initial conc."," "c "" 0 ""0),("At. eqm." ,C(1-alpha)"" calpha ""calpha),(,K_(b) ~=C alpha^(2) ""("By Ostwald's DILUTION law")):}` `alpha = SQRT((K_(b))/(C))=sqrt((1.7xx10^(-9))/(01))=sqrt(1.7xx10^(-8))=13.10^(-4)` `: .` % disssociation (i.e. , % that forms `C_(5)H_(5)overset(+)NH` ion) `=1.3xx10^(-4)xx100=0.013 %` |
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| 11. |
The percentage of pyridine (C_5H_5N) that forms pyridinium ion (C_5H_5N^(+)H) in a 0.1 M aqueous pyridine solution (K_b for C_5H_5N=1.7xx10^(-9) ) is |
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Answer» `0.77%` `K_b=C alpha^2` `alpha=sqrt((1.7xx10^(-9))/0.1)=1.30xx10^(-4)` `%alpha=1.30xx10^(-4)XX100` `%alpha`=0.013% |
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| 12. |
The percentage of Pi-charaacter in the orbitals forming P-P bonds in P_(4) is |
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Answer» 25 |
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| 13. |
The percentage of p-character of the hybrid orbitals in graphite and diamond are respectively |
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Answer» 33 and 25 `therefore %` p-character = `(2)/(3) XX100 = 67%` Hybridisation in diamond = `sp^(3)` `therefore %` p-character `= (3)/(4)xx100 = 75%` . |
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| 14. |
The percentageof p-character in SF_(6) are |
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Answer» `120^(@), 20%` octahedral with each bond angle = `90^(@)`. % of d-character `=("2(no. of d-ORBITALS)")/("6(total no.of hybrid orbitals ")XX100 = 33%`. |
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| 15. |
The percentage of oxygen in NaOH is |
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Answer» 40 |
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| 16. |
The percentage of oxygen in a compound is determined by |
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Answer» DUMAS method |
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| 17. |
The percentage of nitrogen in urea (NH_(2)CONH_(2)), is |
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Answer» 38.4 |
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| 18. |
The percentage of nitrogen in urea is about...... |
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Answer» 23.23 |
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| 19. |
The percentage of nitrogen in urea |
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Answer» 0.46 |
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| 20. |
The percentage of lead in lead pencils is |
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Answer» 0 |
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| 21. |
The percentage of ionic character of LiH is 76.81% and the bond length is 1.596Å. Wha is the value of dipole moment of LiH molecule? [1D=3.335xx10^(-30)C*m] |
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Answer» Solution :If the molecule is 100% ionic, then `mu_("ionic")=qxxd=1.602xx10^(-19)Cxx1.596xx10^(-10)m` `=2.557xx10^(-29)C*m` `%` ionic CHARACTER`=(mu_("observed"))/(mu_("ionic"))XX100` `thereforemu_("observed")=("% ionic character"xxmu_("ionic"))/(100)` `=(76.81xx2.557x10^(-29))/(100)=1.96xx10^(-29)C*m` `=(1.96xx10^(-29))/(3.335xx10^(-30))D=5.07D` |
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| 22. |
Thepercentageof ______in thecompoundis usuallyfoundbydifferencebetweenthetotalpercentagecompositon(100)and thesumof thepercentageof all otherelements . |
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Answer» nitrogen |
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| 23. |
The percentage of enol content in the following is in the order I) CH_(3)COCH_(2)COCH_(3)II) CH_(3)COCH_(2)COOCH_(3)III) CH_(3)COCH_(2)CH_(2)CH_(5) |
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Answer» `I GT II gt III` |
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| 24. |
The percentage of empty space in a body centred cubic arrangement is _____ |
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Answer» 74 |
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| 25. |
The percentage of copper in copper (II) salt can be determined by using a thisulphate titration. A 0.305g of copper (II) salt was dissolved in water and added to an excess of potassium iodide solution liberating iodine according to the following equation: 2Cu^(2+)(aq)+4I^(-)(aq)to2Cul(s)+I_(2)(aq) The iodine liberated required 24.5cm^(3) of a 0.1 mole dm^(-3)solution of sodium thiosulphate for titration according to reaction: 2S_(2)O_(3)^(2-)+I_(2)(aq)+S_(4)O_(6)^(2-)(aq) The percentage of copper by mass in the copper (II) salt is (Atomic mass of copper =63.5) |
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Answer» 64.2 |
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| 26. |
The percentage of chlorine in the chloride of an element is 44.71%. 158.5 g of this chloride on vaporisation occupies a volume of 22.4 litres at NTP. Calculate the atomic weight and valency of the element. |
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Answer» Solution :Since 22.4 litres are occupied by 1 MOLE at NTP and WT. of 1 mole is the mol . Wt . In GRAMS , `:.` mol . Wt. of CHLORIDE = 158.5 |
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| 27. |
The percentage of Carbon, Hydrogeon and Oxygen in an organic substance are 40, 6.666 and 53.34 respectively. Molecular mass of the compound is 180 g mol^(-1). Find the value of integal number. |
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Answer» 6  `:.` EMPIRICAL formula `= CH_(2)O` and Empirical formula MASS `= C + 2H + O` `= 12 + 2+ 16 = 30` Integral no. `= ("molecular mass")/("empirical formula mass") = (180)/(30) =6` |
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| 28. |
the percentage of carbon and hydrogen are estimated simultaneously in an organic cmpound by liebig method |
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Answer» |
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| 29. |
The percentage of C, H and Cl in an organic compounds is 10%, 0.84%, 89.2% respectively. Find out its empirical formula. |
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Answer» `C Cl_(4)` |
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| 30. |
The percentage of C in methanoic anhydride is ........ |
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Answer» 64.86 It is `H_(2)C_(2)O_(3)` and its molar mass `= 2(H) +2(C) +3(O)` `=2(1)+2(12)+3(16)` `=2+24+48= 74 g mol^(-1)` 1 MOLE `H_(2)C_(2)O_(3)` has 24 g carbon, `% C = (24xx100)/(74) = 32.432~~32.43%` |
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| 31. |
The percentage of an element M is 53 in its oxide of molecular formula M_(2)O_(3). Its atomic mass is about |
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Answer» 45 `:.` EQUIVALENT mass of element`=("Mass of element")/("Mass of oxygen") xx 8 = (53)/(47) xx 8 ~=9` `:.` ATOMIC mass `=` Equivalentmass of an element `xx` Valency `= 9 xx 3 = 27g` |
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| 32. |
The percentage of all the elements present o in a compound is 95 . What doesit indicate ? |
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Answer» |
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| 33. |
The percentage nitrogen in a compound is determined by |
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Answer» Nessler's method |
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| 34. |
The percentage ionic character of a covalent bond (A-B) is about 50%, the electronegativity difference of the two elements will be : |
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Answer» `1.5` |
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| 35. |
The percentage composition of the elements of C_(8)H_(9)ON is |
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Answer» 8:9:1:1 |
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| 36. |
The percentage degree of hydrolysis of a salt of weak acid (HA) and weak base (BOH)in its 0.1 M solutions is found to be 10% If the molarity of the solution is 0.05M, the percentage hydrolysis of the salt should be : |
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Answer» `5% ` In this formula , Conc. TERM is ABSENT i.e., .h.does not DEPEND on concentration . |
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| 38. |
The percentage by volume of C_(3)H_(8) in a gaseous mixture of C_(3)H_(8),CH_(4)andCO is 20. When 10 ml of the mixture is burnt in excess of O_(2), the volume of CO_(2) produced is 2xml. Find the value of .x.. |
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Answer» Let VOLUME of `CH_(4)=x` `implies CO=(8-x)ml` `{:(C_(3)H_(8)+5O_(2),rarr,3CO_(2)+4H_(2)O),("2 ml",rarr,"6 ml"),(CH_(4)+2O_(2),rarr,CO_(2)+2H_(2)O),("x ml",rarr,"x ml"),(CO+(1)/(2)O_(2),rarr,CO_(2)),((8-x)ml,rarr,(8-x)ml):}` `V_(CO_(2))=6+x+(8-x)=14ml` |
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| 39. |
The percentage by mass of C, H, and Cl in a compound are C 52.2%, H 3.7% and Cl 44.1%. How many carbon atoms are in the simplest formular of the compound? |
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Answer» 3 |
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| 40. |
The particle size range from……..in colloidal state |
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Answer» 1-100nm |
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| 41. |
The partial pressure of nitrogen in air of 0.76 atm and its Henry's law constant is 7.6 xx 10 ^(4) atm at 300K. What is the mole fraction of nitrogen gas in the solution obtained when air is bubbled through water at 300 K ? |
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Answer» `1 xx 10 ^(-4)` |
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| 42. |
The partial pressure of dry gas is |
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Answer» GREATER than the of WET gas |
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| 43. |
The partial pressure of carbon dioxide in the reaction CaCO_(3)(s)hArrCaO(s)+CO_(2)(g) is 1.017xx10^(-3) atm at 500^(@)C. Calculate K_(P) at 600^(@)c C for the reaction. DeltaH for the reaction is 181 kJ mol^(-1) and does not change in the given range pf temperature. |
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Answer» SOLUTION :`P_(CO_(2))=1.017xx10^(-3)" atm "T=500^(@)C` `K_(P)=P_(CO_(2))` `:.L_(P_(1))=1.017xx10^(-3),T=500+273=773K` `K_(P_(1))=?""T=600+273=873K` `DeltaH^(@)=181" kJ mol"^(-1)` `"LOG"((K_(P_(2)))/(K_(P_(1))))=(DeltaH^(@))/(2.303R)((T_(2)-T_(1))/(T_(1)T_(2)))` `"log"((K_(P_(2)))/(1.017xx10^(-3)))=(181xx10^(3))/(2.303xx8.314)((873-773)/(873xx773))` `"log"((K_(P_(2)))/(1.017xx10^(-3)))=(181xx10^(3)xx100)/(2.303xx8.314xx873xx773)` `(K_(P_(2)))/(1.017xx10^(-3))="anti log of "(1.40)` `(K_(P_(2)))/(1.017xx10^(-3))=25.12` `rArr" "K_(P_(2))=25.12xx1.017xx10^(-3)` `K_(P_(2))=25.54xx10^(-3)` |
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| 44. |
The partial pressure of carbon dioxide in the reaction CaCO_3(s) hArr CaO(s)+ CO_2(g) is 1.017 xx 10^(-3) atm at 500^@C. Calculate K_P" at " 600^@C for the reaction. DeltaH for the reaction is 181 kJ mol^(-1) and does not change in the given range of temperature. |
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Answer» Solution :`P_(CO_2) = 1.017 XX 10^(-3)a t m, T = 500^@C` `K_P = P_(CO_2)` `:. K_(P_1) = 1.017 xx 10^(-3), T= 500 + 273 = 773 K` `K_(P_2) = ?, T = 600+ 273 = 873 K` `DeltaH^@ = 181 kJ mol^(-1)` `log""((K_(P_2))/K_(P_1)) = (DeltaH^@)/(2.303 R) ((T_2-T_1)/(T_1T_2))` `log""(K_(P_2)/(1.017 xx 10^(-3)))=(181xx 10^3)/(2.303 xx 8.314) ((873 - 773)/(873 xx 773))` `log""(K_(P_2)/(1.017 xx 10^(-3))) = (181xx 10^3xx 100)/(2.303 xx 8.314 xx 873 xx 773)` `K_(P_2)/(1.017xx 10^(-3))`= ANTILOG of (1.40) `K_(P_2)/(1.017xx 10^(-3)) = 25.12` `rArr K_(P_2) = 25.12 xx 1.017 xx 10^(-3)` `K_(P_2) = 25.54 xx 10^(-3)` |
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| 45. |
The pari of compounds that can exist together is |
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Answer» `FeCI_(3),SnCI_(2)` |
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| 46. |
The parameters that describe the gaseous state are _________ |
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Answer» VOLUME |
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| 48. |
The paramagnetic species is... |
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Answer» `KO_(2)` |
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| 49. |
The pairs of species of oxygen and their magnetic behaviours are noted below . Which of the following presents the correct description ? |
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Answer» `O_(2)^(-), O_(2)^(2)` - BONE diamagnetic i.e.,` pi_(2p_(x))^(**1)pi_(2p_(x))^(**2)` `O_(2)^(-)` will have one upaired electron , `O_(2)^(2-)` will have no unpaired electron, `O_(2)^(+)` will have one unprired electron, `""_(8) O = 1s^(2) 2s^(2) 2p_(x)^(2) 2p_(y)^(1) 2p_(z)^(1)` and THUS has two unpaired electrons , `O^(+)` will have one unpaired electron . Thus , `O_(2)^(+) and O_(2)` contain unpaired electrons and HENCE will be both paramagnetic . |
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| 50. |
The para magnetic nature of oxygen is best explained by |
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Answer» V.B.theory |
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