Question

At 25 °C, 1.00 mole of O2 gas was found to occupy a volume of

12.5 L at a pressure of 198 kPa. What is the value of the gas
constant in Lakpa ?

Answer 1

R = 8.3 LakPaK-1

Step-by-step explanation:

Applying PV = nRT

P= 198kPa, V= 12.5L, n= 1, T = 25+273= 298K

198×12.5 = 1×R× 298

Simplify

R= 8.3LkPa