How many calcium atoms are present in a mass of $169 \cdot g$ $169*g$ of this metal?

Question

How many calcium atoms are present in a mass of $169 \cdot g$ $169*g$ of this metal?

1 Answer

Impact of this question

8462 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-02-05T10:59:56

$Number of atoms$ $"Number of atoms"$ $= \frac{Mass}{Molar mass} \times Avogadro's number.$ $="Mass"/"Molar mass"xx"Avogadro's number."$

Explanation:

By definition, $40.1 \cdot g$ $40.1*g$ of calcium atoms contains $Avogadro's number of molecules$ $"Avogadro's number of molecules"$ . We specify this quantity as $1 \cdot m o l$ $1*mol$ of $calcium atoms$ $"calcium atoms"$ .

And so we take the quotient, $\frac{169 \cdot g}{40.1 \cdot g \cdot m o l^{- 1}}$ $(169*g)/(40.1*g*mol^-1)$ , and multiply this by $N_{A}, Avogadro's number of molecules,$ $N_A, "Avogadro's number of molecules",$ where $N_{A} = 6.022 \times 10^{23} \cdot m o l^{- 1}$ $N_A=6.022xx10^23*mol^-1$ .

And thus the product, $(169*cancelg)/(40.1*cancelg*cancel(mol^-1))xx6.022xx10^23*cancel(mol^-1)$ gives a DIMENSIONLESS number as required, approx. $4xxN_A$ .

If I asked how many eggs were in 3 dozen eggses, I think you would immediately be able to reply. The question here is much the same sort of question, and can be viewed in the same simple light.

Science

Math

Humanities

... and beyond

How many calcium atoms are present in a mass of $169 \cdot g$ $169*g$ of this metal?

1 Answer

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

How many calcium atoms are present in a mass of 169*g169⋅g169*g of this metal?

1 Answer

Explanation:

Related questions

Impact of this question

How many calcium atoms are present in a mass of $169 \cdot g$ $169*g$ of this metal?