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how many grams of bromine, br2, are required to react completely with 37.4 grams of aluminum chloride, AlCl3?
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how many grams of bromine, br2, are required to react completely with 37.4 grams of aluminum chloride, AlCl3?

User Jose Elera
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The reaction of bromine with aluminum chloride will bring about the formation of aluminum bromide and chlorine through a single-replacement reaction. This can be expressed in a balanced chemical reaction,

3Br₂ + 2AlCl₃ --> 2AlBr₃ + 3Cl₂

This means that 3 moles of Br₂ which is equal to 159.1 g is required to react with 2 moles of AlCl₃ or equal to 266.68 g. Using this and the given above,

mass of bromine = (37.4 grams AlCl3)(159.1 g of Bromine/266.68 g of AlCl3)
Mass of bromine = 22.31 grams of Br₂

Answer: 22.31 grams
User Interlude
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