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Since a single atom is the formula unit for carbon, 1 mole of it contains Avodagro's number of atoms, about 6.022 X 1023.

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How many moles of carbon atoms are there in 12g of carbon?

There are 1 mole of carbon atoms in 12g of carbon. This is because the molar mass of carbon is 12 g/mol, so 12g of carbon is equivalent to 1 mole of carbon atoms.


How many carbon atoms are contained in 85.9 g of carbon?

85.9 (g C) = 85.9 (g C) / 12.00 (g/mol C) = 7.158 (mol C)7.158 (mol C)*[6.022*1023 (atoms/mol C)] = 4.31*1024 C-atoms


How many moles of carbon atoms are there in 3 grams of carbon?

The questions asks how many moles of carbon atoms.Molar mass is defined as the mass of one mole of a substance or in this case 6.022x1023 atoms of carbon. So the molar mass for carbon is 12.0 g/mol. Therefore the number of moles of carbon atoms is just 36/12.0 = 3.0 moles of carbon.How many atoms are in 36 grams of Carbon?[36 (gC) /12.0 (gC/molC)] * 6.02*10+23 (atoms C/molC) = 1.8*10+24 atoms in 36 g Carbon


How many atoms are in 1.6 g C?

There are approximately 1.34 x 10^22 carbon atoms in 1.6 g of carbon. This calculation is based on the molar mass of carbon (12 g/mol) and Avogadro's number (6.022 x 10^23 atoms/mol). To find the number of atoms, divide the mass of the sample by the molar mass of carbon, and then multiply by Avogadro's number.


How many number of carbon atoms are present in 0.062 mol acetic acid HC2H3O2?

There are 3 carbon atoms in 1 molecule of acetic acid (HC2H3O2). Therefore, in 0.062 mol of acetic acid, there would be 0.062 x 3 = 0.186 moles of carbon atoms. To find the number of carbon atoms, you would multiply the number of moles by Avogadro's number (6.022 x 10^23) to get approximately 1.12 x 10^23 carbon atoms.


How many carbon atoms are in 1.97 grams of glucose?

Glucose is 180.16 g/mol. Doing stoichiometry, this means 1.97 grams is 0.0109 mol glucose. Because there are 6 mols of carbon per 1 mol of glucose, that means there are 0.0656 mols of carbon in this sample. One mole is equivalent to 6.023 x 1023 atoms, which leads to 3.95 x 1022 carbon atoms.


How many atoms of carbon are in a pure sample of carbon having a mass of 72.0 g?

There are 6.022 x 10^23 atoms in 1 mole of carbon. The molar mass of carbon is 12 g/mol. Therefore, in 72.0 g of carbon, there are (72.0 g / 12 g/mol) * 6.022 x 10^23 atoms = 3.61 x 10^24 atoms of carbon.


How many atoms are in 1 mole of Copper?

1 mol Cu Atoms (6.02x10^23 atoms)


How many carbon atoms are in 2.6g of graphite pure carbon?

To calculate the number of carbon atoms in 2.6g of graphite, first calculate the number of moles of carbon using its molar mass (12.01 g/mol). Then, use Avogadro's number (6.022 x 10^23 atoms/mol) to determine the number of carbon atoms. This calculation will give you the number of carbon atoms in 2.6g of pure carbon as graphite.


How many atoms in 1cm3 of carbon?

There are approximately 2.42 x 10^22 atoms in 1 cm^3 of carbon, assuming a density of 2.26 g/cm^3 and an atomic weight of 12.011 g/mol for carbon.


How many particles are in 1 mole of carbon?

Number of particles = number of mol x avogadro constant = 1 x 6.02 x 1023


How many atoms in 1 mol of chlorine?

There are approximately 6.022 x 10^23 atoms in 1 mol of chlorine, according to Avogadro's number.