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What is the mass of the precipitate form...

What is the mass of the precipitate formed when 50 mL of `17.0%` solution of `AgNO_(3)` is mixed with 50 mL of `11.6%NaCl` solution?

Text Solution

AI Generated Solution

To find the mass of the precipitate formed when 50 mL of 17.0% AgNO₃ solution is mixed with 50 mL of 11.6% NaCl solution, we can follow these steps: ### Step 1: Calculate the mass of AgNO₃ in the solution - The concentration of AgNO₃ is 17.0%, which means there are 17 grams of AgNO₃ in 100 mL of solution. - For 50 mL of AgNO₃ solution: \[ \text{Mass of AgNO₃} = \frac{17 \, \text{g}}{100 \, \text{mL}} \times 50 \, \text{mL} = 8.5 \, \text{g} \] ...
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Knowledge Check

  • What is the mass of the precipitate formed when 50 mL of 16.9 % solution of AgNO_(3) is mixed with 50 mL of 5.8 % NaCl solution ? (Ag = 107.8,N=14,O=16,Na=23,Cl=35.5)

    A
    3.5 g
    B
    7 g
    C
    14 g
    D
    28 g
  • What is the mass of the precipitate formed when 50 mL of 16.9% solution of AgNO_(3) is mixed with 50 mL of 5.8% NaCl solution?

    A
    (a)`7 g`
    B
    (b)`14 g`
    C
    (c )`28 g`
    D
    (d)`3.5 g`
  • What is the mass of the precipitate formed when 50 mL of 16.9% solution of AgNO, is mixed with 50 mL of 5.8% NaCl solution? (Ag = 107.8, N = 14,0 = 16, Na - 23, C1= 35.5)

    A
    3.5 g
    B
    7 g
    C
    14 g
    D
    28 g
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