Stoichiometry grams to moles flashcards

Learn how to convert grams to moles with these Stoichiometry flashcards.

MayaHeron·18 flashcards·15 vragen·1 weergaven
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What is a mole?

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A mole is 6.022×1023\displaystyle 6.022 \times 10^{23} particles of a substance.

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Quiz(15 vragen)

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1. Which is the correct formula to convert grams to moles?

Termen in deze set(18)

What is a mole?

A mole is 6.022×1023\displaystyle 6.022 \times 10^{23} particles of a substance.

Molar mass definition

The mass of one mole of a substance, usually in g/mol.

Formula to convert grams to moles

Use: moles=fracgramsmolar mass\displaystyle \text{moles} = \\frac{\text{grams}}{\text{molar mass}}.

True or false: Molar mass is the same for all substances.

False, because molar mass varies by substance.

Difference between grams and moles

Grams measure mass; moles measure quantity of particles.

How to find molar mass?

Add the atomic masses of all atoms in a molecule.

What unit is molar mass measured in?

Molar mass is measured in grams per mole (g/mol).

Example: Molar mass of H₂O?

Molar mass = 2×1+16=18 g/mol\displaystyle 2\times1 + 16 = 18 \text{ g/mol}.

How many moles in 50 g of NaCl?

Molar mass of NaCl = 58.44 g/mol, so frac5058.440.855\displaystyle \\frac{50}{58.44} \approx 0.855 moles.

Fill in the blank: 1 mole of carbon has a mass of ___ g.

12.01 g (molar mass of carbon).

What does the term stoichiometry mean?

The calculation of reactants and products in chemical reactions.

True or false: 1 mole of any gas occupies the same volume.

True, because at STP, 1 mole of any gas occupies 22.4 L.

How to convert moles to grams?

Use: grams=moles×molar mass\displaystyle \text{grams} = \text{moles} \times \text{molar mass}.

Question: What is the molar mass of CO₂?

Molar mass = 12.01+2×16=44.01 g/mol\displaystyle 12.01 + 2\times16 = 44.01 \text{ g/mol}.

What is Avogadro's number?

Avogadro's number is 6.022×1023\displaystyle 6.022 \times 10^{23}, representing particles in a mole.

Difference between empirical and molecular formula

Empirical shows simplest ratio; molecular shows actual number of atoms.

How many grams in 2 moles of H₂?

Molar mass of H₂ = 2.02 g/mol, so 2×2.02=4.04\displaystyle 2 \times 2.02 = 4.04 g.

What is the unit for measuring mass in stoichiometry?

Mass is measured in grams (g) in stoichiometry.

Vragen in deze set(15)

1. Which is the correct formula to convert grams to moles?

A.A) moles = grams × molar mass
B.B) moles = grams / molar mass
C.C) grams = moles / molar mass
D.D) grams = moles × molar mass

2. What is the molar mass of NaCl?

A.A) 58.44 g/mol
B.B) 22.99 g/mol
C.C) 35.45 g/mol
D.D) 74.55 g/mol

3. Fill in the blank: 1 mole of O₂ has a mass of ___ g.

A.A) 16 g
B.B) 32 g
C.C) 24 g
D.D) 28 g

4. If you have 10 g of water, how many moles do you have?

A.A) 0.55 moles
B.B) 0.56 moles
C.C) 0.57 moles
D.D) 0.58 moles

5. True or false: The molar mass of hydrogen is 1 g/mol.

A.A) True
B.B) False
C.C) Depends on temperature
D.D) Depends on pressure

6. What quantity does a mole represent?

A.A) Mass
B.B) Volume
C.C) Amount of substance
D.D) Density

7. Which is NOT a method to find molar mass?

A.A) Sum atomic masses
B.B) Use a periodic table
C.C) Measure volume
D.D) Calculate from density

8. How many grams are in 3 moles of CO₂?

A.A) 44.01 g
B.B) 88.02 g
C.C) 132.03 g
D.D) 22.01 g

9. What is the empirical formula for C₆H₁₂O₆?

A.A) C₆H₁₂O₆
B.B) CH₂O
C.C) C₃H₆O₃
D.D) C₂H₄O₂

10. What is the volume occupied by 1 mole of gas at STP?

A.A) 22.4 L
B.B) 24 L
C.C) 30 L
D.D) 10 L

11. Fill in the blank: The molar mass of sodium is ___ g/mol.

A.A) 22.99
B.B) 18.02
C.C) 28.08
D.D) 35.45

12. Which of the following gases has the highest molar mass?

A.A) O₂
B.B) N₂
C.C) CO₂
D.D) Ar

13. True or false: Molar mass is always expressed in grams.

A.A) True
B.B) False
C.C) Sometimes
D.D) Depends on the substance

14. How many moles are in 100 g of glucose (C₆H₁₂O₆)?

A.A) 5.55 moles
B.B) 2.85 moles
C.C) 1.00 mole
D.D) 4.44 moles

15. What is the main use of stoichiometry in chemistry?

A.A) To measure temperatures
B.B) To calculate amounts in reactions
C.C) To observe colors
D.D) To measure pressure

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