Consider the stack of pennies in the previous problem. How much money (in dollars) would this represent? If this money were equally distributed among the world's population of 7.0 billion people, how much would each person receive? Would each person be a millionaire? A billionaire? A trillionaire?
Ch.2 - Atoms & Elements
Chapter 2, Problem 112
A pure titanium cube has an edge length of 2.78 in. How many titanium atoms does it contain? Titanium has a density of 4.50 g/cm3.
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Key Concepts
Here are the essential concepts you must grasp in order to answer the question correctly.
Density
Density is defined as mass per unit volume and is a crucial property of materials. In this context, the density of titanium (4.50 g/cm³) allows us to calculate the mass of the titanium cube by multiplying its volume by its density. Understanding density helps in converting between mass and volume, which is essential for determining the number of atoms in a given mass of a substance.
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Molar Mass
Molar mass is the mass of one mole of a substance, typically expressed in grams per mole (g/mol). For titanium, the molar mass is approximately 47.87 g/mol. This concept is vital for converting the mass of titanium obtained from the density calculation into moles, which can then be used to find the number of atoms, as one mole contains Avogadro's number (approximately 6.022 x 10²³) of atoms.
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Volume Calculation
Volume calculation is essential for determining the space occupied by an object. For a cube, the volume can be calculated using the formula V = edge length³. In this case, converting the edge length from inches to centimeters is necessary to match the units with the density. This volume will then be used to find the mass of the titanium cube, which is a critical step in calculating the number of titanium atoms.
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Related Practice
Textbook Question
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Textbook Question
The mass of an average blueberry is 0.75 g and the mass of an automobile is 2.0×103 kg. Find the number of automobiles whose total mass is the same as 1.0 mol of blueberries.
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Open Question
Suppose that atomic masses were based on the assignment of a mass of 12.000 g to 1 mol of carbon, rather than 1 mol of 12C. What would the atomic mass of oxygen be? (The atomic masses of carbon and oxygen, based on the assignment of 12.000 g to 1 mol of 12C, are 12.011 amu and 15.9994 amu, respectively.)
Textbook Question
A pure copper sphere has a radius of 0.935 in. How many copper atoms does it contain? [The volume of a sphere is (4/3)πr3 and the density of copper is 8.96 g/cm3.]
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What is the radius (in cm) of a pure copper sphere that contains 1.14 * 10^24 copper atoms? [The volume of a sphere is (4/3)πr^3 and the density of copper is 8.96 g/cm^3.]
Textbook Question
What is the edge length (in cm) of a titanium cube that contains 2.55 * 1024 titanium atoms? The density of titanium is 4.50 g/cm3.
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