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1 formula unit of MgCl2 = 59.758g

31.4g MgCl2 x 1 formula unit/59.758g = 0.525 formula unit of MgCl2

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How many formula units in 47.63 grams?

It depends on the substance and its molar mass.In order to convert from grams to formula units, you must first convert grams to moles, then moles to formula units (grams --> moles --> formula units).1. Divide the mass (g) of the given substance by the substance's molar mass.2. Multiply the number of moles found in Step 1 (above) by Avogadro's number (6.022 x 1023).---- Mass substance ----- X 6.022 x 1023 formula unitsMolar mass substanceCONVERSION FACTOR47.63g substance x 1 mol substance ---- x ----- Avogadro's number///////////////////// molar mass (g) substance ////// 1 mol substance


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Related Questions

How many formula units make up 21.8 g of magnesium chloride (MgCl2)?

To find the number of formula units in 21.8 g of magnesium chloride (MgCl₂), first calculate its molar mass. The molar mass of MgCl₂ is approximately 95.3 g/mol (24.3 g/mol for Mg and 35.5 g/mol for Cl, multiplied by 2). Next, divide the mass of MgCl₂ by its molar mass: 21.8 g ÷ 95.3 g/mol ≈ 0.229 moles. Finally, multiply the number of moles by Avogadro's number (6.022 × 10²³) to find the number of formula units: 0.229 moles × 6.022 × 10²³ ≈ 1.38 × 10²³ formula units.


How many formula units make up 23.6 g of magnesium chloride?

To determine how many formula units make up 23.6 g of magnesium chloride (MgCl₂), first calculate its molar mass, which is approximately 95.3 g/mol. Next, divide the mass of magnesium chloride by its molar mass: 23.6 g ÷ 95.3 g/mol ≈ 0.247 mol. Since one formula unit of MgCl₂ contains one magnesium atom and two chloride atoms, the number of formula units is Avogadro's number (6.022 x 10²³) multiplied by the number of moles: 0.247 mol x 6.022 x 10²³ ≈ 1.49 x 10²³ formula units.


How many formula units make up 10.6 g of magnesium chloride?

To find the number of formula units in 10.6 g of magnesium chloride (MgCl₂), first calculate its molar mass. The molar mass of MgCl₂ is approximately 95.21 g/mol. Then, convert grams to moles: (10.6 , \text{g} \div 95.21 , \text{g/mol} \approx 0.111 , \text{mol}). Finally, multiply the moles by Avogadro's number ((6.022 \times 10^{23}) units/mol) to get the number of formula units: (0.111 , \text{mol} \times 6.022 \times 10^{23} \approx 6.69 \times 10^{22}) formula units of magnesium chloride.


How many formula units make up 11.8 g of magnesium chloride (MgCl2)?

To find the number of formula units in 11.8 g of magnesium chloride (MgCl₂), first calculate the molar mass of MgCl₂, which is approximately 95.3 g/mol. Then, divide the mass of the sample by the molar mass: ( \frac{11.8 , \text{g}}{95.3 , \text{g/mol}} \approx 0.124 , \text{mol} ). Finally, multiply the number of moles by Avogadro's number ((6.022 \times 10^{23} \text{ units/mol})): ( 0.124 , \text{mol} \times 6.022 \times 10^{23} \approx 7.47 \times 10^{22} ) formula units.


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K2O is potassium oxide. Formula mass = 94g32.6 g x 1 FU/94 g = 0.35 formula units