HELP PLSSS!!! How many particles are present in 166.3g of Ba(BrO3)2 ? (Round your answer to the hundredths place) Show work

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asked Oct 7, 2023 172k views

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JohnJ · Answer 1 · 2023-10-13T16:16:38+0000

$=166.3g\ Ba(BrO_(3))_(2)\ x\ (1\ mol\ Ba(BrO_(3))_(2))/(393.13g\ Ba(BrO_(3))_(2))\ x\ (6.022\ x\ 10^(23)\ particles)/(1\ mol\ Ba(BrO_(3))_(2))$

$=2.547398062\ x\ 10^(23)\ particles$

$=2.55\ x\ 10^(23)\ particles$

You are given the mass of barium bromate. You have to find the moles of this substance using the molar mass and then multiply it by avogadro's number to find how many particles are present.

HELP PLSSS!!! How many particles are present in 166.3g of Ba(BrO3)2 ? (Round your answer to the hundredths place) Show work

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