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a mixture of neon and nitrogen gases is maintained in a 7.94 l flask at a pressure of 1.51 atm and a temperature of 26.0 °c. if the gas mixture contains 5.35 grams of neon, the number of grams of nitrogen in the mixture is g.
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Step1: Calculate the total moles of gas
Use the ideal gas law \(PV = nRT\).
Given \(P = 1.51\ atm\), \(V=7.94\ L\), \(T=(26.0 + 273.15)K=299.15\ K\), and \(R = 0.0821\ L\cdot atm/(mol\cdot K)\).
Step2: Calculate the moles of neon
The molar mass of neon \(M_{Ne}=20.18\ g/mol\). Given \(m_{Ne} = 5.35\ g\).
Step3: Calculate the moles of nitrogen
Step4: Calculate the mass of nitrogen
The molar mass of nitrogen \(M_{N_2}=28.02\ g/mol\).
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\(6.30\)