The Henry's law constant for oxygen gas in water at `25^(@)C` is `1.3xx10^(-3)` M `atm^(-1)`. What is the partial pressure of `O_(2)` above a solution at `25^(@)`C with an `O_(2)` concetration of `2.3xx10^(-4)` M at equilibrium?

Henry law constant for oxygen dissolved in water is 4.34 xx 10^(4) atm at 25^(@) C . If the partial pressure of oxygen in air is 0.4 atm.Calculate the concentration ( in moles per litre) of the dissolved oxygen in equilbrium with air at 25^@C .

The Henry's Law constant for oxygen dissolved in water is 4.34xx10^(4) atm at 25^(@)C . If partial pressure of exygen in are is 0.2 atm. Under ordinary atmospheric conditions, calculate the concentration (in moles/litre) of dissolved oxygen in water in equilibrium with air at 25^(@)C .

The Henry's law constant for O_(2) , dissolved in water is 4.34 xx 10^(4) atm at certain temperature. If the partial pressure of O_(2) , in a gas mixture that is in equilibrium with water is 0.434 atm, what is the mole fraction of O_(2) , in the solution?

Applying Henry's law: The solubility of pure N_(2)(g) at 25^(@)C and 1 atm is 6.8xx10^(-4) mol L^(-1) . If the partial pressure of N_(2)(g) in the atmosphere is 0.78 atm , calculate the concentration of N_(2)(g) dissolved in water under atmospheric conditions. Strategy: According to Henry's law, the solubility of a gas in water is KP . Thus, the first step is to calculate the quantity K .

The rate constant of a reactant is 1.5 xx 10^(-3) at 25^(@)C and 2.1 xx 10^(-2) at 60^(@)C . The activation energy is

The solubility of oxygen gas at 25^(@)C at 1 atmosheric pressure is 1.43 xx10^(-4) mol dm^(-3) Calculate the partial pressure of oxygen if the Henry's law constant for oxygen is 0.65 xx10^(-3) mol dm^(-3) atm^(-1)