Ask Question
11 September, 08:04

How many bromine atoms are present in 39.0 g of ch2br2?

+2
Answers (1)
  1. 11 September, 09:56
    0
    Answer is: there is 2,69·10²³ atoms of bromine.

    m (CH₂Br₂) = 39,0 g.

    n (CH₂Br₂) = m (CH₂Br₂) : M (CH₂Br₂).

    n (CH₂Br₂) = 39 g : 173,83 g/mol.

    n (CH₂Br₂) = 0,224 mol.

    In one molecule of CH₂Br₂, there is two bromine atoms, so:

    n (CH₂Br₂) : n (Br) = 1 : 2.

    n (Br) = 0,448 mol.

    N (Br) = n (Br) · Na.

    N (Br) = 0,448 mol · 6,022·10²³ 1/mol.

    n (Br) = 2,69·10²³.
Know the Answer?
Not Sure About the Answer?
Get an answer to your question ✅ “How many bromine atoms are present in 39.0 g of ch2br2? ...” in 📙 Chemistry if there is no answer or all answers are wrong, use a search bar and try to find the answer among similar questions.
Search for Other Answers