Chemistry
7th Edition
ISBN: 9780321940872
Author: John E. McMurry, Robert C. Fay, Jill Kirsten Robinson
Publisher: PEARSON
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Textbook Question
Chapter 11, Problem 11.11P
PRACTICE 11.11 Polonium metal crystallizes in a simple cubic arrangement, with the edge of a unit cell having a length d = 334 pm. What is the density of polonium?
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Chemistry
Ch. 11 - PRACTICE 11.1 The boiling point of ethanol is 78.4...Ch. 11 - APPLY 11.2 Chloroform CHCl3 has Hvap=29.2kJ/mol...Ch. 11 - Prob. 11.3PCh. 11 - APPLY 11.4 What is the sign and magnitude of q...Ch. 11 - Prob. 11.5PCh. 11 - Prob. 11.6ACh. 11 - Prob. 11.7PCh. 11 - Prob. 11.8ACh. 11 - Prob. 11.9PCh. 11 - Prob. 11.10A
Ch. 11 - PRACTICE 11.11 Polonium metal crystallizes in a...Ch. 11 - Prob. 11.12ACh. 11 - Prob. 11.13PCh. 11 - Prob. 11.14ACh. 11 - Conceptual PRACTICE 11.15 Look at the phase...Ch. 11 - Prob. 11.16ACh. 11 - Prob. 11.17PCh. 11 - Prob. 11.18PCh. 11 - Prob. 11.19PCh. 11 - Prob. 11.20PCh. 11 - Prob. 11.21PCh. 11 - Assume that you have a liquid in a cylinder...Ch. 11 - Identify each of the following kinds of packing:Ch. 11 - Prob. 11.24CPCh. 11 - Prob. 11.25CPCh. 11 - Prob. 11.26CPCh. 11 - Prob. 11.27CPCh. 11 - Prob. 11.28SPCh. 11 - Prob. 11.29SPCh. 11 - Prob. 11.30SPCh. 11 - Prob. 11.31SPCh. 11 - Prob. 11.32SPCh. 11 - Prob. 11.33SPCh. 11 - Prob. 11.34SPCh. 11 - Prob. 11.35SPCh. 11 - Prob. 11.36SPCh. 11 - Prob. 11.37SPCh. 11 - Prob. 11.38SPCh. 11 - Prob. 11.39SPCh. 11 - Prob. 11.40SPCh. 11 - Prob. 11.41SPCh. 11 - Prob. 11.42SPCh. 11 - Prob. 11.43SPCh. 11 - Prob. 11.44SPCh. 11 - Prob. 11.45SPCh. 11 - Prob. 11.46SPCh. 11 - Prob. 11.47SPCh. 11 - Prob. 11.48SPCh. 11 - Prob. 11.49SPCh. 11 - Prob. 11.50SPCh. 11 - Prob. 11.51SPCh. 11 - Prob. 11.52SPCh. 11 - Prob. 11.53SPCh. 11 - Prob. 11.54SPCh. 11 - Prob. 11.55SPCh. 11 - Prob. 11.56SPCh. 11 - Prob. 11.57SPCh. 11 - Prob. 11.58SPCh. 11 - Prob. 11.59SPCh. 11 - Prob. 11.60SPCh. 11 - Prob. 11.61SPCh. 11 - Prob. 11.62SPCh. 11 - Prob. 11.63SPCh. 11 - Prob. 11.64SPCh. 11 - Prob. 11.65SPCh. 11 - Prob. 11.66SPCh. 11 - Prob. 11.67SPCh. 11 - Copper crystallizes in a face-centered cubic unit...Ch. 11 - 11.69 Lead crystallizes in a face-centered cubic...Ch. 11 - Aluminum has a density of 2.699 g/cm3 and...Ch. 11 - Tungsten crystallizes in a body-centered cubic...Ch. 11 - Prob. 11.72SPCh. 11 - Prob. 11.73SPCh. 11 - Prob. 11.74SPCh. 11 - Prob. 11.75SPCh. 11 - Prob. 11.76SPCh. 11 - Prob. 11.77SPCh. 11 - Prob. 11.78SPCh. 11 - Prob. 11.79SPCh. 11 - Prob. 11.80SPCh. 11 - Prob. 11.81SPCh. 11 - Prob. 11.82SPCh. 11 - Prob. 11.83SPCh. 11 - Prob. 11.84SPCh. 11 - Prob. 11.85SPCh. 11 - Prob. 11.86SPCh. 11 - Prob. 11.87SPCh. 11 - Prob. 11.88SPCh. 11 - 11.89 Assume that you have samples of the...Ch. 11 - Prob. 11.90SPCh. 11 - Prob. 11.91SPCh. 11 - Prob. 11.92SPCh. 11 - Prob. 11.93SPCh. 11 - Prob. 11.94CPCh. 11 - Prob. 11.95CPCh. 11 - Prob. 11.96CPCh. 11 - Prob. 11.97CPCh. 11 - Prob. 11.98CPCh. 11 - Prob. 11.99CPCh. 11 - Prob. 11.100CPCh. 11 - Prob. 11.101CPCh. 11 - Prob. 11.102CPCh. 11 - Prob. 11.103CPCh. 11 - Prob. 11.104CPCh. 11 - Prob. 11.105CPCh. 11 - Prob. 11.106CPCh. 11 - Prob. 11.107CPCh. 11 - Prob. 11.108CPCh. 11 - Iron crystallizes in a body-centered cubic unit...Ch. 11 - Prob. 11.110CPCh. 11 - Prob. 11.111CPCh. 11 - Prob. 11.112CPCh. 11 - Prob. 11.113CPCh. 11 - Prob. 11.114CPCh. 11 - Prob. 11.115CPCh. 11 - Prob. 11.116MPCh. 11 - Prob. 11.117MPCh. 11 - Prob. 11.118MPCh. 11 - A group 3A metal has a density of 2.70 g/cm3 and a...Ch. 11 - Prob. 11.120MPCh. 11 - Prob. 11.121MP
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- A portion of the crystalline lattice for potassium is illustrated below. (a) In what type of unit cell are the K atoms arranged? A portion of the solid-state structure of potassium. (b) If one edge of the potassium unit cell is 533 pm, what is the density of potassium?arrow_forwardThe CsCl structure is a simple cubic array of chloride ions with a cesium ion at the center of each cubic array (see Exercise 69). Given that the density of cesium chloride is 3.97 g/cm3, and assuming that the chloride and cesium ions touch along the body diagonal of the cubic unit cell, calculate the distance between the centers of adjacent Cs+ and Cl ions in the solid. Compare this value with the expected distance based on the sizes of the ions. The ionic radius of Cs+ is 169 pm, and the ionic radius of Cl is 181 pm.arrow_forwardThe compounds ethanol (C2H5OH) and dimethyl ether (CH3OCH3) have the same molecular formula. Which is expected to have the higher surface tension? Why?arrow_forward
- Silicon carbide, SiC, is a very hard, high-melting solid. What kind of crystal forces account for these properties?arrow_forwardWhat is a lattice? What is a unit cell? Describe a simple cubic unit cell. How many net atoms are contained in a simple cubic unit cell? How is the radius of the atom related to the cube edge length for a simple cubic unit cell? Answer the same questions for the body-centered cubic unit cell and for the face-centered unit cell.arrow_forwardRubidium chloride has the sodium chloride structure at normal pressures but assumes the cesium chloride structure at high pressures. (See Exercise 69.) What ratio of densities is expected for these two forms? Does this change in structure make sense on the basis of simple models? The ionic radius is 148 pm for Rb+ and 181 pm for CI.arrow_forward
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