Introduction to Chemistry
4th Edition
ISBN: 9780073523002
Author: Rich Bauer, James Birk Professor Dr., Pamela S. Marks
Publisher: McGraw-Hill Education
expand_more
expand_more
format_list_bulleted
Concept explainers
Textbook Question
Chapter 8, Problem 14QP
Which of the following compounds are likely to occur as solid at room temperature?
Expert Solution & Answer
Want to see the full answer?
Check out a sample textbook solutionStudents have asked these similar questions
Which of the following compounds forms a covalent network solid?
(A) PbO2
(B) SiO2
(C) TIO2
(D) All of them
Mixing SbCl3 and GaCl3 in a 1;1 molar ratio (usingliquid sulfur dioxide as a solvent) gives a solid ioniccompound of empirical formula GaSbCl6. A controversyarises over whether this compound is ( ) SbCl2 + ( ) GaCl 4 - or( ) GaCl+ 2 ( ) SbCl 4 -(a) Predict the molecular structures of the two anions.(b) It is learned that the cation in the compound has abent structure. Based on this fact, which formulationis more likely to be correct?
Use principles of atomic structure to answer each of the following:
(1]
(a) The radius of the Ca atom is 197 pm; the radius of the Ca2* ion is 99 pm. Account for the difference.
(b) The lattice energy of CaO(s) is –3460 kJ/mol; the lattice energy of K20 is –2240 kJ/mol. Account for the
difference.
(c) Given these ionization values, explain the difference between Ca and K with regard to their first and second
ionization energies.
Element First lonization Energy (kJ/mol)
Second lonization Energy (kJ/mol)
K
419
3050
Ca
590
1140
(d) The first ionization energy of Mg is 738 kJ/mol and that of Al is 578 kJ/mol. Account for this difference.
Chapter 8 Solutions
Introduction to Chemistry
Ch. 8 - Prob. 1QCCh. 8 - Prob. 2QCCh. 8 - Prob. 3QCCh. 8 - Prob. 4QCCh. 8 - Prob. 5QCCh. 8 - Prob. 1PPCh. 8 - Prob. 2PPCh. 8 - Prob. 3PPCh. 8 - Prob. 4PPCh. 8 - Prob. 5PP
Ch. 8 - Prob. 6PPCh. 8 - Prob. 7PPCh. 8 - Prob. 8PPCh. 8 - Prob. 9PPCh. 8 - Prob. 10PPCh. 8 - Prob. 11PPCh. 8 - Prob. 1QPCh. 8 - Prob. 2QPCh. 8 - What is a chemical bond?Ch. 8 - Describe the difference between ionic and covalent...Ch. 8 - Which type of elements are most likely to form...Ch. 8 - Which type of elements are most likely to form...Ch. 8 - Prob. 7QPCh. 8 - Which of the following compounds are likely to...Ch. 8 - Prob. 9QPCh. 8 - Prob. 10QPCh. 8 - Prob. 13QPCh. 8 - Which of the following compounds are likely to...Ch. 8 - Predict whether each of the following substances...Ch. 8 - Prob. 16QPCh. 8 - Describe how electronegativity values change going...Ch. 8 - Compare the electronegativity of metallic and...Ch. 8 - What kind of bonds are always nonpolar?Ch. 8 - Describe how to decide whether a bond is polar.Ch. 8 - Prob. 21QPCh. 8 - Using periodic trends, arrange the following atoms...Ch. 8 - Prob. 23QPCh. 8 - Prob. 24QPCh. 8 - Prob. 25QPCh. 8 - Arrange the following bonds in order of increasing...Ch. 8 - What information can be determine from Lewis...Ch. 8 - What is the maximum number of valence electrons...Ch. 8 - Draw Lewis symbols showing the valence electrons...Ch. 8 - Draw Lewis symbols showing the valence electrons...Ch. 8 - Draw Lewis symbols showing the valence electrons...Ch. 8 - Prob. 32QPCh. 8 - Write a formula for each of the following ionic...Ch. 8 - Write a formula for each of the following ionic...Ch. 8 - Prob. 35QPCh. 8 - Prob. 36QPCh. 8 - Prob. 37QPCh. 8 - Prob. 38QPCh. 8 - Prob. 39QPCh. 8 - What holds ions together in a crystal lattice?Ch. 8 - Describe the sodium chloride structure shown in...Ch. 8 - Describe the cesium chloride structure shown in...Ch. 8 - Why does CaF2 have a different crystal structure...Ch. 8 - Prob. 44QPCh. 8 - Draw the Lewis structures for O2andF2. (a) How...Ch. 8 - Draw the Lewis structures for I2andN2. (a) How...Ch. 8 - Why does hydrogen exist as a diatomic molecules?Ch. 8 - How many electrons does each hydrogen have in the...Ch. 8 - How many single bonds are typically formed by the...Ch. 8 - How many single bonds are typically formed by the...Ch. 8 - Identify a main-group element (X) could form each...Ch. 8 - Identify a main-group element (X) could form each...Ch. 8 - Prob. 53QPCh. 8 - Draw a Lewis structure for each of the following:...Ch. 8 - Draw a Lewis structure for each of the following:...Ch. 8 - Prob. 56QPCh. 8 - Prob. 57QPCh. 8 - Prob. 58QPCh. 8 - Prob. 59QPCh. 8 - How is the concept of resonance consistence with...Ch. 8 - Prob. 61QPCh. 8 - Indicate whether or not each of the following...Ch. 8 - Draw a Lewis structure, include the resonance...Ch. 8 - Prob. 64QPCh. 8 - In HF, the hydrogen atoms shares two electrons...Ch. 8 - Describe the bonding in S2Cl2. The atom are...Ch. 8 - Decide whether the indicated atoms obeys the octet...Ch. 8 - Decide whether the indicated atom obeys the octet...Ch. 8 - An atom of the following molecules does not obey...Ch. 8 - An atom of the following molecules does not obey...Ch. 8 - Prob. 71QPCh. 8 - Prob. 72QPCh. 8 - Draw the Lewis structure of benzene, C6H6, a...Ch. 8 - Prob. 74QPCh. 8 - Prob. 75QPCh. 8 - Prob. 76QPCh. 8 - Prob. 77QPCh. 8 - Prob. 78QPCh. 8 - Identify the class of class of substance for each...Ch. 8 - Prob. 80QPCh. 8 - Draw the Lewis structure for an aldehyde that has...Ch. 8 - Draw the Lewis structure for ketone that has the...Ch. 8 - Prob. 83QPCh. 8 - Why are unshared pairs of electrons on a central...Ch. 8 - Why is it important to draw Lewis structures...Ch. 8 - Explain how nonbonding pairs of electrons...Ch. 8 - Draw each of the following geometric arrangements....Ch. 8 - In which of the following molecular shapes would...Ch. 8 - Predict the parent structures of the following...Ch. 8 - Predict the parent structures of the following...Ch. 8 - Predict the parent structures of the following...Ch. 8 - Predict the shapes and gives approximate bond...Ch. 8 - Predict the bond angles in the following...Ch. 8 - Predict the bond angles in the following...Ch. 8 - Prob. 95QPCh. 8 - Prob. 96QPCh. 8 - Prob. 97QPCh. 8 - Prob. 98QPCh. 8 - Is this the shape of NO3 or ClO3?Ch. 8 - Is this shape of
Ch. 8 - Which of the following molecules or ions have...Ch. 8 - Which of the following molecules or ions have...Ch. 8 - Hydrazine, N2H4, is a colorless, oily liquid that...Ch. 8 - Oxalic acid, H2C2O4, a poisonous colorless solid,...Ch. 8 - Chloropicrin, Cl3CNO2, is an insecticide that has...Ch. 8 - Fuel cell are used in many areas, such as the...Ch. 8 - Distinguish between bond polarity and molecular...Ch. 8 - Why does molecular polarity depend not only on...Ch. 8 - Explain how carbon tetrachloride can have polar...Ch. 8 - Explain why hydrocarbons are all essentially...Ch. 8 - Are the following molecules polar or nonpolar?...Ch. 8 - Are the following molecules polar or nonpolar?...Ch. 8 - For each pair of molecules decide which molecule...Ch. 8 - Explain why the first molecule of each pair is...Ch. 8 - Prob. 115QPCh. 8 - Prob. 116QPCh. 8 - Which molecule, CF4orCCl2F2, is most likely to be...Ch. 8 - Which molecule, SO2orCO2, is most likely to be...Ch. 8 - Which of these molecules is polar? Assume the...Ch. 8 - Which of these molecules is polar? Assume the...Ch. 8 - Draw Lewis symbols showing the valence electrons...Ch. 8 - Draw Lewis symbols showing the valence electrons...Ch. 8 - Arrange the following atoms in order of decreasing...Ch. 8 - Prob. 124QPCh. 8 - Classify each of the following substances...Ch. 8 - Draw a Lewis structure for each of the following....Ch. 8 - Prob. 127QPCh. 8 - Draw a Lewis structure, including the resonance...Ch. 8 - Draw the Lewis structure for each of the...Ch. 8 - Gaseous aluminium chloride exists as a dimer,...Ch. 8 - Describe the molecular shape of each of the...Ch. 8 - Describe the structure and bonding in sulfuric...Ch. 8 - Decide which of each pair of gaseous molecules is...Ch. 8 - Which of the following are nonpolar molecules,...Ch. 8 - For each pair of molecules decide which molecule...Ch. 8 - Prob. 136QPCh. 8 - Predict whether each of the following substances...Ch. 8 - Predict whether each of the following substances...Ch. 8 - Prob. 139QPCh. 8 - Prob. 140QPCh. 8 - There are two different alcohols with the formula...Ch. 8 - The proteins in our bodies are built from small...Ch. 8 - Prob. 143QPCh. 8 - Plastic food storage containers are often made of...Ch. 8 - Draw the Lewis structure for a ketone containing...Ch. 8 - Compare the molecular shape around each carbon...Ch. 8 - Which compound contains both covalent and ionic...Ch. 8 - The bonds in O3 are expected to be A. ionic...Ch. 8 - Which of the following is a true statement about...Ch. 8 - Which of the following bonds is most polar?...Ch. 8 - Which of the following always violets the octet...Ch. 8 - Identify the main-group element X that could form...Ch. 8 - Which of the following has a Lewis structure most...Ch. 8 - Which of the following has a double bond?...Ch. 8 - Which of the following statements about resonance...Ch. 8 - Prob. 156QPCh. 8 - Which of the following molecules has a bent...Ch. 8 - Which of the following molecules is polar?...
Knowledge Booster
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.Similar questions
- 122 CHAPTER 5ID 15. Which of the following best describes the particle-level bonding in a crystal of KBr? iupil doiw (A) alternating positive and negative metal ions in a crystal lattice framework. (B) positive and negative ions in fixed position in a crystal lattice framework. (C) mobile valence electrons shared between positive metal ions. (D) metallic and nonmetallic atoms covalently bonded in a 3-dimenional framework. () HO (C) CC (D) CH'OE Questions 16-17 use the following information. 6801 9010 oloegsini doidW8 H H H---H H H Ethane wolod a (B) но-с-Сн, — СH, — СH, — СH, ннн нннн H-C-C- C-C-C-C-C-H || | | I|| Η Η Η Η | H. нн Heptane Pentanoic Acid 10 Name Chemical Formula Molar Mass (g/mole) Boiling Point (°C) Ethane 30.07 -88.5 Heptane 16 100.20 98.1-98.7 Pentanoic Acid 102.13 186-187 16. Heptane and pentanoic acid have very similar molar masses, but pentanoic acid has a significantly higher boiling point. Which of the following statements best helps explain this observation? (A)…arrow_forwardWhich of the following compounds requires the most energy to convert one mole of the solid into separateions?(a) MgO(b) SrO(c) KF(d) CsF(e) MgF2arrow_forwardWhich of the following molecules or ions contain polar bonds?(a) O3(b) S8(c) O22−(d) NO3−(e) CO2(f) H2S(g) BH4−arrow_forward
- Identify the electron pair geometry and the molecular structure of each of the following molecules or ions:(a) IF6+(b) CF4(c) BF3(d) SiF5−(e) BeCl2arrow_forwardDraw the Lewis structures for CO2 and CO, and predict the number of σ and π bonds for each molecule.(a) CO2(b) COarrow_forwardDraw a Lewis structure for(a) The cyclic silicate ion Si₄O₁₂⁸⁻(b) A cyclic hydrocarbon with formula C₄H₈arrow_forward
- Chlorine dioxide gas (ClO2) is used as a commercial bleachingagent. It bleaches materials by oxidizing them. In thecourse of these reactions, the ClO2 is itself reduced. (a)What is the Lewis structure for ClO2? (b) Why do you thinkthat ClO2 is reduced so readily? (c) When a ClO2 moleculegains an electron, the chlorite ion, ClO2-, forms. Draw theLewis structure for ClO2-. (d) Predict the O—Cl—O bondangle in the ClO2- ion. (e) One method of preparing ClO2is by the reaction of chlorine and sodium chlorite:Cl2(g) + 2 NaClO2(s)------>2 ClO2(g) + 2 NaCl(s)If you allow 15.0 g of NaClO2 to react with 2.00 L of chlorinegas at a pressure of 1.50 atm at 21 °C, how many gramsof ClO2 can be prepared?arrow_forwardThe elements sodium, aluminum, and chlorine are in the same period. (a) Which has the greatest electronegativity? (b) Which of the atoms is smallest? (c) Which is the largest possible oxidation state for each of these elements? (d) Will the oxide of each element in the highest oxidation state (write its formula) be acidic, basic, or amphoteric?arrow_forwardThe illustrations below depict differences in orbital hy-bridization of some tellurium (Te) fluorides. (a) Which depictsthe difference, if any, between TeF₆(left) and TeF₅(right)? (b) Which depicts the difference, if any, between TeF₄(left) and TeF₆(right)?arrow_forward
- Describe the molecular structure around the indicated atom or atoms:(a) the sulfur atom in sulfuric acid, H2SO4 [(HO)2SO2](b) the chlorine atom in chloric acid, HClO3 [HOClO2](c) the oxygen atom in hydrogen peroxide, HOOH(d) the nitrogen atom in nitric acid, HNO3 [HONO2](e) the oxygen atom in the OH group in nitric acid, HNO3 [HONO2](f) the central oxygen atom in the ozone molecule, O3(g) each of the carbon atoms in propyne, CH3CCH(h) the carbon atom in Freon, CCl2F2(i) each of the carbon atoms in allene, H2CCCH2arrow_forwardThree main group elements, X, Y and Z, from three different groups inthe Periodic Table, each form a neutral trifluoride, i.e. XF3, YF3 andZF3. (a) To which three groups of the Periodic Table could the elementsX, Y and Z belong? Are any of these atoms X, Y or Zhypervalent in the trifluorides formed? (b) Use VSEPR theory to deduce the shapes of the molecules XF3,YF3 and ZF3, showing full working, and sketch these shapes (c) Only two of the three trifluorides have a non-zero dipole moment.For these molecules to which groups of the Periodic Table do thecentral atoms belong?arrow_forwardAcetylene 1C2H22 and nitrogen 1N22 both contain a triplebond, but they differ greatly in their chemical properties.(a) Write the Lewis structures for the two substances. (b) Byreferring to Appendix C, look up the enthalpies of formationof acetylene and nitrogen. Which compound is more stable?(c) Write balanced chemical equations for the completeoxidation of N2 to form N2O51g2 and of acetylene to formCO21g2 and H2O1g2. (d) Calculate the enthalpy of oxidationper mole for N2 and for C2H2 (the enthalpy of formationof N2O51g2 is 11.30 kJ>mol). (e) Both N2 and C2H2 possesstriple bonds with quite high bond enthalpies (Table 8.3).Calculate the enthalpy of hydrogenation per mole for bothcompounds: acetylene plus H2 to make methane, CH4;nitrogen plus H2 to make ammonia, NH3.arrow_forward
arrow_back_ios
SEE MORE QUESTIONS
arrow_forward_ios
Recommended textbooks for you
- Chemistry: Principles and ReactionsChemistryISBN:9781305079373Author:William L. Masterton, Cecile N. HurleyPublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781133949640Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage Learning
- Chemistry: Principles and PracticeChemistryISBN:9780534420123Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward MercerPublisher:Cengage Learning
Chemistry: Principles and Reactions
Chemistry
ISBN:9781305079373
Author:William L. Masterton, Cecile N. Hurley
Publisher:Cengage Learning
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Chemistry: Principles and Practice
Chemistry
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Cengage Learning
Types of bonds; Author: Edspira;https://www.youtube.com/watch?v=Jj0V01Arebk;License: Standard YouTube License, CC-BY