CramX Logo

Q
QuestionChemistry

What is the molar mass of the compound silver chloride?
12 months agoReport content

Answer

Full Solution Locked

Sign in to view the complete step-by-step solution and unlock all study resources.

Step 1:
I'll solve this problem step by step, following the specified LaTeX formatting guidelines:

Step 2:
: Identify the chemical formula

The chemical formula for silver chloride is $$AgCl

Step 3:
: Determine the atomic masses

- Silver (Ag): $$m_{Ag} = 107.87 \mathrm{~g/mol}
- Chlorine (Cl): m_{Cl} = 35.45 \mathrm{~g/mol}

Step 4:
: Calculate the molar mass by summing the atomic masses

\mathrm{Molar~Mass} = m_{Ag} + m_{Cl}
\mathrm{Molar~Mass} = 107.87 \mathrm{~g/mol} + 35.45 \mathrm{~g/mol}

Step 5:
: Compute the total molar mass

\mathrm{Molar~Mass} = 143.32 \mathrm{~g/mol}

Final Answer

The molar mass of silver chloride (AgCl) is 143.32 \mathrm{~g/mol}.