Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
2nd Edition
ISBN: 9781337086431
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 9, Problem 56E

A metallic solid with atoms in a face-centered cubic unit cell with an edge length of 392 pm has a density of 21.45 g/cm3. Calculate the atomic mass and the atomic radius of the metal. Identify the metal.

Expert Solution & Answer
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Interpretation Introduction

Interpretation:

  • Atomic radius of the metal has to be calculated.
  • Atomic mass of the metal has to be calculated.
  • The metal has to be identified.

Concept introduction:

            In crystalline solids, the components are packed in regular pattern and neatly stacked. The components are imagined as spheres and closely packed. This phenomenon is called “close packing” in crystals. The two major types of close packing of the spheres in the crystal are – hexagonal close packing and cubic close packing. Cubic close packing structure has face-centered cubic (FCC) unit cell.

           In face-centered cubic unit cell, each of the six corners is occupied by every single atom. Each face of the cube is occupied by one atom.

           Each atom in the corner is shared by eight unit cells and each atom in the face is shared by two unit cells. Thus the number of atoms per unit cell in FCC unit cell is,

                     8×18atomsincorners+6×12atomsinfaces=1+3=4atoms   The edge length of one unit cell is given bya=2R2where  a=edgelength of unit cellR=atomicradius.

Answer to Problem 56E

Answer

Atomic radius of the metal is 1.4 A°.

Atomic mass of the metal is 194 u

The metal is identified as “Platinum”.

Explanation of Solution

Explanation

Calculate the atomic radius of metal.

givendata:edgelength,a=392pm=392×10-12ma=2R2

R=a22=392×10-12m2×1.414=138.6×10-12mR=138.6pm

           The edge length value for the FCC unit cell is given. The edge length value is related to the radius of the atom by the equation a=2R2 . The given value for ‘a’ is substituted and the equation is rearranged to obtain atomic radius ‘R’ of the metal.

Calculate the mass of unit cell of metal.

given data: density = 21.45 g/cm3density=massvolumemass=volume×density=6.024×10-23cm3×21.45g/cm3massofaunitcell=129.21×10-23g

       Density of the unit cell is given. The mass of unit cell is calculated using the equation density=massvolume.The values are substituted and the equation is rearranged to obtain the mass value.

Calculate the atomic mass of metal.

Average mass of one metal atom=massofunitcell4=129.21×10-234=32.3×10-23g

Average mass of one metal atom=atomicmassofmetalAvogadronumberatomicmassofmetal=Average mass of one metal atom×Avogadronumber

                                                      =32.3×10-23×6.022×1023=194.5u

               In FCC unit cell of a metal, each unit cell has 4 metal atoms. So each metal atom has an average mass of 1/4th of the mass of unit cell. The atomic mass of a metal atom corresponds to the Avogadro number of the average mass of a metal atom.

Identify the metal corresponding to the atomic mass calculated.

             The identified metal is “Platinum”.

             Platinum is the metal that possibly agrees best with the calculated atomic mass.

Conclusion

Conclusion

  • Atomic radius of the metal is calculated.
  • Atomic mass of the metal is calculated.
  • The metal is identified.

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Chapter 9 Solutions

Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card

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F2, NaF, and HF....Ch. 9 - Prob. 39ECh. 9 - Consider the following electrostatic potential...Ch. 9 - In each of the following groups of substances,...Ch. 9 - Prob. 42ECh. 9 - The shape of the meniscus of water in a glass tube...Ch. 9 - Prob. 44ECh. 9 - Prob. 45ECh. 9 - Prob. 46ECh. 9 - X rays from a copper X-ray tube ( = 154 pm) were...Ch. 9 - The second-order diffraction (n = 2) for a gold...Ch. 9 - A topaz crystal has an interplanar spacing (d) of...Ch. 9 - X rays of wavelength 2.63 were used to analyze a...Ch. 9 - Prob. 51ECh. 9 - Prob. 52ECh. 9 - Prob. 53ECh. 9 - Iridium (Ir) has a face-centered cubic unit cell...Ch. 9 - You are given a small bar of an unknown metal X....Ch. 9 - A metallic solid with atoms in a face-centered...Ch. 9 - Titanium metal has a body-centered cubic unit...Ch. 9 - Barium has a body-centered cubic structure. 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The first...Ch. 9 - Prob. 115AECh. 9 - Argon has a cubic closest packed structure as a...Ch. 9 - Prob. 117AECh. 9 - A 20.0-g sample of ice at 10.0C is mixed with...Ch. 9 - In regions with dry climates, evaporative coolers...Ch. 9 - The critical point of NH3 is 132C and 111 atm, and...Ch. 9 - Which of the following compound(s) exhibit only...Ch. 9 - Which of the following statements about...Ch. 9 - Prob. 123CWPCh. 9 - Aluminum has an atomic radius of 143 pm and forms...Ch. 9 - Pyrolusite is a mineral containing manganese ions...Ch. 9 - The structure of the compound K2O is best...Ch. 9 - Prob. 127CWPCh. 9 - Some ice cubes at 0c with a total mass of 403 g...Ch. 9 - The enthalpy of vaporization for acetone is 32.0...Ch. 9 - Prob. 130CWPCh. 9 - When I mole of benzene is vaporized at a constant...Ch. 9 - Prob. 132CPCh. 9 - Using the heats of fusion and vaporization for...Ch. 9 - Prob. 134CPCh. 9 - Consider two different organic compounds, each...Ch. 9 - Prob. 136CPCh. 9 - Prob. 137CPCh. 9 - Prob. 138CPCh. 9 - Prob. 139CPCh. 9 - Prob. 140CPCh. 9 - Mn crystallizes in the same type of cubic unit...Ch. 9 - Prob. 142CPCh. 9 - Some water is placed in a sealed glass container...Ch. 9 - The molar enthalpy of vaporization of water at 373...Ch. 9 - Prob. 145CPCh. 9 - Rubidium chloride has the sodium chloride...Ch. 9 - Prob. 147IPCh. 9 - A metal burns in air at 600c under high pressure...Ch. 9 - Prob. 149IPCh. 9 - General Zod has sold Lex Luthor what Zod claims to...
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