A substance on analysis, gave the following percentage composition, Na = 43.4%, C = 11.3%, 0 = 45.3% calculate its empirical formula [Na = 23, C = 12, O = 16].

A substances on analysis for the following percentage composition the formula composition: Na = 43.4 %,C = 11.3 % , O= 45.3%. Calculate the emperical formula [Na = 23, C=12, O=16]

An organic compound on analysis gave the following composition : C = 57.8% H = 3.6% and rest is oxygen. Its empirical formula is :

A compound on analysis gave the following percentage composition: Na=14.31% S = 9.97%, H = 6.22%, O = 69.5%, calcualte the molecular formula of the compound on the assumption that all the hydrogen in the compound is present in combination with oxygen as water of crystallisation. Molecular mass of the compound is 322 [Na = 23, S = 32, H = 1, 0 = 16].

A compound has the following composition Mg = 9.76%,S = 13.01%, 0 = 26.01, H_2O = 51.22, what is its empirical formula? [Mg = 24, S = 32, O = 16, H = 1]

A compound has the following composition Mg = 9.76%, S = 13.01 %, O=26.01, H_(2)O = 51.22% , What is its emperical formula [Mg = 24, S=32, O=16, H=1]

A compound on analysis gave the following percentage composition C = 54.54%, H, 9.09% 0 = 36.36. The vapour density of the compound was found to be 44. Find out the molecular formula of the compound.

An orgainc compound contains 43.98% C , 2.09% H , and 37.2% Cl . Calculate its empirical formula.

Convert the following ratios to percentages: (a) 3:4