202.44
To prepare 1 M sulfuric acid (H2SO4), you would need to dilute concentrated sulfuric acid to the desired molarity. Calculate the volume of concentrated sulfuric acid needed based on its concentration (typically around 18 M) and the final volume required. Always add acid to water slowly with stirring and proper safety equipment due to the exothermic nature of dilution and the corrosive properties of sulfuric acid. Dilute to the final volume with distilled water.
Using V * M = constant at dilution = amount of H2SO4 [mol] in both of the solutionsV= volume [L] of the solutionM= molarity [mol/L] of the solutionSo: V *18.0 = 24.9 * 0.195 gives V = ( 24.9 * 0.195 ) / 18.0 = 0.270 L
To prepare a 0.02 M (molar) solution of H2SO4 (sulfuric acid), you would first need to calculate the amount of sulfuric acid needed based on its molar mass (98.08 g/mol). Then, measure out the calculated mass of H2SO4 using a balance and dissolve it in a known volume of water to make the desired concentration. For example, to make 1 liter of 0.02 M H2SO4, you would dissolve 19.62 grams of H2SO4 in enough water to make 1 liter of solution.
You need 252 g sulfuric acid.
Mix 120 g sulfuric acid with water to 1000 mL.
how 2.5N H2SO4 prepared from concentrated H2SO4
H2SO4 is sulfuric acid
Sulfuric acid is H2SO4
H2SO4 is sulfuric acid. So the answer is 100%
con.H2SO4 is 98%(v/v)ie 980ml/litre.or 980X1.84(specific gravity of H2So4)ie wt/litre is 1803.2Normality= wt per litre/ Eq.wtie 1803.2/49=36.8 NHence con H2So4 is 36.8 NTo prepare 5 N , It has be diluted 7.36 times with water68
The dissociation equation for sulfuric acid (H2SO4) is: H2SO4 - 2H SO42-
To make 4.5 M H2SO4 from concentrated sulfuric acid (98% H2SO4), you would need to dilute it with water. Calculate the volume of concentrated sulfuric acid needed based on the final volume desired, then add water to reach the total volume. Always remember to add acid to water slowly and carefully to avoid splashing or overheating.