Answer:
0.88 g
Step-by-step explanation:
Using ideal gas equation to calculate the moles of chlorine gas produced as:-
![PV=nRT](https://img.qammunity.org/2020/formulas/chemistry/high-school/uelah1l4d86yyc7nr57q25hwn1eullbhy3.png)
where,
P = pressure of the gas = 805 Torr
V = Volume of the gas = 235 mL = 0.235 L
T = Temperature of the gas =
![25^oC=[25+273]K=298K](https://img.qammunity.org/2020/formulas/physics/high-school/h3swi627jfkpg7vx7in8p5pe35bz1gwehq.png)
R = Gas constant =
![62.3637\text{torr}mol^(-1)K^(-1)](https://img.qammunity.org/2020/formulas/chemistry/college/50tdg3zuyh42f00nm3k2z6xsy8wbidb89a.png)
n = number of moles of chlorine gas = ?
Putting values in above equation, we get:
![805torr* 0.235L=n* 62.3637\text{ torrHg }mol^(-1)K^(-1)* 298K\\\\n=(805* 0.235)/(62.3637* 298)=0.01017\ mol](https://img.qammunity.org/2020/formulas/chemistry/college/4yts1q7cyxrq0pssj9zrz0r4mcwf3gh398.png)
According to the reaction:-
![MnO_2+4HCl\rightarrow MnCl_2+2H_2O+Cl_2](https://img.qammunity.org/2020/formulas/chemistry/college/epzcite8qzayckd36oybiw26fedk2wq84h.png)
1 mole of chlorine gas is produced when 1 mole of manganese dioxide undergoes reaction.
So,
0.01017 mole of chlorine gas is produced when 0.01017 mole of manganese dioxide undergoes reaction.
Moles of
= 0.01017 moles
Molar mass of
= 86.93685 g/mol
So,
![Mass=Moles* Molar\ mass](https://img.qammunity.org/2020/formulas/chemistry/college/gbjrzinc5f0g9c4pweybpp8s8vlqlvzaae.png)
Applying values, we get that:-
![Mass=0.01017moles * 86.93685\ g/mol=0.88\ g](https://img.qammunity.org/2020/formulas/chemistry/college/n9fx61eypljnw8eavfzlieax6gs0xxick3.png)
0.88 g of
should be added to excess HCl (aq) to obtain 235 mL of
at 25 degrees C and 805 Torr.