8 g of sulphur is burnt to form `SO_(2)` which is oxidized by `Cl_(2)` water. The solution is treated with `BaCl_(2)` Solution: The amount of `BaSO_(4)` precipitated is

Objective question . i. A certains compound has the molecular formula X_(4) O_(6) . If 10 g of X_(4) O_(6) has 5.72 g X , then atomic mass of X is: a. 32 amu b. 42 amu c. 98 amu d. 37 amu ii. For 109% labelled oleum, if the number of moles of H_(2)SO_(4) and free SO_(3) be p and q , respectively, then what will be the value of (p - q)/(p + q) a. 1//9 b. 9 c. 18 d. 1//3 iii. Hydrogen peroxide in aqueous solution decomposes on warming to give oxygen according to the equation, 2H_(2) O_(2) (aq) rarr 2 H_(2) O (l) + O_(2) (g) Under conditions where 1 mol gas occupies 24 dm^(3), 100 cm^(3) of X M solution of H_(2) O_(2) produces 3 dm^(3) of O_(2) . Thus, X is a. 2.5 b. 0.5 c. 0.25 d. 1 iv. 4 g of sulphur is burnt to form SO_(2) which is oxidised by Cl_(2) water. The solution is then treated with BaCl_(2) solution. The amount of BaSO_(4) precipitated is: a. 0.24 mol b. 0.5 mol c. 1 mol d. 0.125 mol v. A reaction occurs between 3 moles of H_(2) and 1.5 moles of O_(2) to give some amount of H_(2) O . The limiting reagent in this reaction is a. H_(2) and O_(2) both b. O_(2) c. H_(2) d. Neither of them vi. 4 I^(ɵ) + Hg^(2+) rarr HgO_(4)^(-) , 1 mole each of Hg^(2+) and I^(ɵ) will form: a. 1 mol of HgI_(4)^(2-) b. 0.5 mol of HgI_(4)^(-2) 0.25 mol of HgI_(4)^(2-) 2 mol of HgI_(4)^(-2)

8 g of sulphur are burnt to form SO_(2) , which is oxidised by Cl_(2) water. The solution is treated with BaCl_(2) solution. The amount of BaSO_(4) precipitated is:

8 g of sulphur are burnt to form SO_(2) , which is oxidised by Cl_(2) water. The solution is treated with BaCl_(2) solution. The amount of moles BaSO_(4) precipitated is:

8 g of sulphur are burnt to form SO_(2) , which is oxidised by Cl_(2) water. The solution is treated with BaCl_(2) solution. The amount of BaSO_(4) precipitated is:

16 g of S is burnt to form SO_2 which is further oxidized by Cl_2 water. The solution obtained is treated with excess BaCl_2 . The moles of BaSO_4 obtained is

When sulphur is boiled with Na_(2)SO_(3) solution, the compound formed is :

Saturated solution of SO_(2) is heated at 150^(@)C in a closed container. The product obtained is treated with BaCl_(2) solution. What is/are the observation (s)?

10 mL of 1 M BaCl_(2) solution & 5 mL 0.5 M K_(2)SO_(4) are mixed together to precipitate out BaSO_(4) . The amount of BaSO_(4) precipated will be

1.53 g of a compound containing only sulphur, oxygen and chlorine after easy hydrolysis with water yielded acid products which consumed 91 " mL of " (N)/(2) sodium hydroxide for complete neutralisation in a parallel experiment, 0.4 g of the compound after hydrolysis with water, was treated with excess of BaCl_(2) solution and 0.7 g of BaSO_(4) was precipitated. What is the formula of the compound?

The metallic salt (XY) is soluble in water. (a) When the aqueous soluble of (XY) is treated with NaOH solution, a white precipitate (A) is formed. In excess of NaOH solution, a white precipitate (A) is formed. In excess of NaOH solution, white precipitate (A) dissolves to form a compound (B) . When this solution is boiled with soild NH_(4) Cl , a precipitate of compound (C) is formed. (b) An aqueous solution on treatment with BaCl_(2) solution gives a white precipitate (D) white is insoluble in conc HCl . ( c) The metallic salt (XY) forms a double salt (E) with potassium sulphate. Identify (XY),(A),(B),(C),(D) and (E) .