In 'x' mL 0.3 N HCl, the addition of 200 mL distilled water or addition of 100 mL 0.1 N NaOH, gives the same final acid strength. Determine 'x'.
Case I
When 200 mL distilled water is added to x mL solution
x X 0.3 = (x + 200) X y
Here, y = final normality or concentration.
y =
Case II
Number of equivalents of HCl =
Number of equivalents of NaOH = = 0.01
Number of equivalents of HCl remained after addition of NaOH =
Concentration = x 1000
As final acid strength is same in both cases =
or (0.3 x -10) x (200 + x) = (0.3x)(100 + x)
or 60 x -2000 + 0.3x2 - l0x = 30x + 0.3x2
or 20x = 2000 or x = 100 ml
Compound A treated with NaNH2 followed by CH3CH2Br gave compound B. Partial hydrogenation of compound B produced compound C, which on ozonolysis gave a carbonyl compound D, (C2H5O). Compound D did not respond to the iodoform test with I2/KI and NaOH. Find out the structures of A, B, C and D.
The bacterial growth follows the rate law, dN/dt = kN where k is a constant and 'N' is the number of bacteria cell at any time. If the population of bacteria (number of cell) is doubled in 5 min find the time in which the population will be eight times of the initial one?
An organic compound with molecular formula C9H10O forms 2, 4-DNP derivative, reduces Tollen's reagent and undergoes Cannizaro reaction. On vigorous oxidation, it gives a dicarboxylic acid which is used in the preparation of terylene. Identify the organic compound.
Deep blue CuSO4.5H2O is converted to a bluish-white salt at 100oC. At 250oC and 750oC it is then transformed to white powder and black material respectively. Identify the salts.