EBK STUDY GUIDE TO ACCOMPANY CHEMISTRY:
7th Edition
ISBN: 9781119360889
Author: HYSLOP
Publisher: VST
expand_more
expand_more
format_list_bulleted
Concept explainers
Textbook Question
Chapter 9, Problem 1RQ
Sketch the following molecular shapes and give the various bond angles in the structures: (a) planar triangular, (b) tetrahedral, (c) octahedral.
Expert Solution & Answer
Want to see the full answer?
Check out a sample textbook solutionStudents have asked these similar questions
(a) Methane (CH4) and the perchlorate ion (ClO4- ) are bothdescribed as tetrahedral. What does this indicate about theirbond angles? (b) The NH3 molecule is trigonal pyramidal, while BF3 is trigonal planar. Which of these molecules is flat?
Consider the reaction BF3 + NH3 -> F3B-NH3
(a) Describe the changes in hybridization of the B and N atoms as a result of this reaction.
(b) Describe the shapes of all the reactant molecules with their bond angles.
(c) Draw the overall shape of the product molecule and identify the bond angles around B and N atoms.
(d) What is the name of the bond between B and N.
(e)Describe the bonding orbitals that make the B and F, B and N & N and H bonds in the product molecule.
1.
Draw the Lewis structures for each of the following ions or molecules. For each, give (i) the
molecular shape, (ii) the electron pair geometry at the central atom, and (iii) the hybridization of the central
atom.
(a) POF3
(b) XeO₂F3+
(c) BrCl₂
(d) N3 (the central atom is N; two other N's are bonded to it)
(e) PF3
Chapter 9 Solutions
EBK STUDY GUIDE TO ACCOMPANY CHEMISTRY:
Ch. 9 - Practice Exercise 9.1 Label the shapes of the...Ch. 9 - Practice Exercise 9.2 What is the shape of the...Ch. 9 - Practice Exercise 9.3
What shape is expected for...Ch. 9 - Practice Exercise 9.4 The first known compound of...Ch. 9 - Practice Exercise 9.5
What shape is expected for...Ch. 9 - Practice Exercise 9.6 What shape is expected for...Ch. 9 - Practice Exercise 9.7 Is the sulfur tetrafluoride...Ch. 9 - Practice Exercise 9.8 Explain how you decided...Ch. 9 - Practice Exercise 9.9 Use the principles of VB...Ch. 9 - Practice Exercise 9.10 The phosphine molecule,...
Ch. 9 - Practice Exercise 9.11
The molecule has a planar...Ch. 9 - Practice Exercise 9.12 In the gas phase, beryllium...Ch. 9 - Practice Exercise 9.13
What kind of hybrid...Ch. 9 - What kind of hybrid orbitals are expected to be...Ch. 9 - Use the VSEPR model to predict the shape of the...Ch. 9 - What kind of orbitals arc used by Xe in the XeF4...Ch. 9 - Explain how to decide what kind of hybrid orbitals...Ch. 9 - If we assume that nitrogen uses sp3 hybrid...Ch. 9 - Practice Exercise 9.19
What is the shape of the ...Ch. 9 - Practice Exercise 9.20
Consider the molecule...Ch. 9 - Practice Exercise 9.21
Consider the molecule...Ch. 9 - The molecular orbital energy level diagram for the...Ch. 9 - The MO energy level diagram for the nitrogen...Ch. 9 - Practice Exercise 9.24
The nitrate ion, , has...Ch. 9 - Prob. 25PECh. 9 - Arrange the following elements in order of...Ch. 9 - Practice Exercise 9.27
What is the hybridization...Ch. 9 - Sketch the following molecular shapes and give the...Ch. 9 - Sketch the following molecular shapes and give the...Ch. 9 - 9.3 What is the underlying principle on which the...Ch. 9 - What is an electron domain? How are nonbonding and...Ch. 9 - 9.5 How many bonding domains and how many...Ch. 9 - Sketch the following molecular shapes and give the...Ch. 9 - What arrangements of domains around an atom are...Ch. 9 - Why is it useful to know the polarities of...Ch. 9 - Prob. 9RQCh. 9 - 9.10 Under what conditions will a molecule be...Ch. 9 - What condition must be met if a molecule having...Ch. 9 - Use a drawing to show why the SO2 molecule is...Ch. 9 - What is meant by orbital overlap?Ch. 9 - How is orbital overlap related to bond energy?Ch. 9 - Use sketches of orbitals to describe how VB theory...Ch. 9 - 9.16 Why do atoms usually use hybrid orbitals for...Ch. 9 - 9.17 Sketch figures that illustrate the...Ch. 9 - 9.18 Sketch figures that illustrate the...Ch. 9 - 9.19 Why do Period 2 elements never use hybrid...Ch. 9 - What relationship is there, if any, between Lewis...Ch. 9 - How can the VSEPR model be used to predict the...Ch. 9 - If the central oxygen in the water molecule did...Ch. 9 - Using orbital diagrams, describe how sp3...Ch. 9 - Sketch the way the orbitals overlap to form the...Ch. 9 - We explained the bond angles of 107inNH3 by using...Ch. 9 - Using sketches of orbitals and orbital diagrams,...Ch. 9 - What two basic shapes have hybridizations that...Ch. 9 - 9.28 The ammonia molecule, , can combine with a...Ch. 9 - 9.29 How does the geometry around B and O change...Ch. 9 - How do and bonds differ?Ch. 9 - Why can free rotation occur easily around a -bond...Ch. 9 - 9.32 Using sketches, describe the bonds and bond...Ch. 9 - Sketch the way the bonds form in acetylene, C2H2.Ch. 9 - How does VB theory treat the benzene molecule?...Ch. 9 - Why is the higher-energy MO in H2 called an...Ch. 9 - Below is an illustration showing two 3d. orbitals...Ch. 9 - 9.37 Will the combination of 3d. orbitals in...Ch. 9 - Explain why He2 does nor exist but H2 does.Ch. 9 - 9.39 How does MO theory account for the...Ch. 9 - 9.40 On the basis of MO theory, explain why ...Ch. 9 - 9.41 What relationship is there between bond order...Ch. 9 - Sketch the shapes of the 2p,and*2p,MOs.Ch. 9 - 9.43 What is the theoretical basis of both valence...Ch. 9 - What shortcomings of Lewis structures and VSEPR...Ch. 9 - What is the main difference in the way VB and MO...Ch. 9 - What is a delocalized MO? Explain, in terms of...Ch. 9 - 9.47 What effect does delocalization have on the...Ch. 9 - Prob. 48RQCh. 9 - Prob. 49RQCh. 9 - 9.50 What is required to form a conduction band?
Ch. 9 - Prob. 51RQCh. 9 - Prob. 52RQCh. 9 - In calcium, why cant electrical conduction take...Ch. 9 - 9.54 What are allotropes? How do they differ from...Ch. 9 - Why are the Period 2 elements able to form much...Ch. 9 - Even though the nonmetals of Periods 3, 4, and 5...Ch. 9 - Which of the nonmetals occur in nature in the form...Ch. 9 - 9.58 Describe the structure of diamond. What kind...Ch. 9 - Describe the structure of graphene. What kind of...Ch. 9 - How is the structure of graphite related to the...Ch. 9 - Prob. 61RQCh. 9 - 9.62 How is the structure of a carbon nanotube...Ch. 9 - 9.63 What is the molecular structure of silicon?...Ch. 9 - Make a sketch that describes the molecular...Ch. 9 - 9.65 What are the different allotropes of...Ch. 9 - 9.66 What are the P—P—P bond angles in the ...Ch. 9 - Prob. 67RQCh. 9 - 9.68 What is the molecular structure of black...Ch. 9 - What are the two allotropes of oxygen?Ch. 9 - Draw the Lewis structure for O3. Is the molecule...Ch. 9 - 9.71 What beneficial function does ozone serve in...Ch. 9 - What is the molecular structure of sulfur in its...Ch. 9 - 9.73 Predict the shapes of (a) , (b) , (c) , (d) ,...Ch. 9 - Predict the shapes of (a) SF3+, (b) GeF4, (c) ,...Ch. 9 - Predict the shapes of...Ch. 9 - Predict the shapes of (a) TeF4, (b) SbCl6, (c)...Ch. 9 - Predict the shapes of...Ch. 9 - 9.78 Predict the shapes of .
Ch. 9 - Which of the following has a shape described by...Ch. 9 - Which of the following has a shape described by...Ch. 9 - Ethene, also called ethylene, is a gas used to...Ch. 9 - Ethyne, more commonly called acetylene, is a gas...Ch. 9 - 9.83 Predict the bond angle for each of the...Ch. 9 - 9.84 Predict the bond angle for each of the...Ch. 9 - 9.85 Which of the following molecules would be...Ch. 9 - Which of the following molecules would he expected...Ch. 9 - Which of the following molecules or ions would be...Ch. 9 - Which of the following molecules or ions would be...Ch. 9 - 9.89 Explain why is nonpolar, but is polar.
Ch. 9 - 9.90 Explain why is polar, but is not.
Ch. 9 - Use sketches of orbitals to show how VB theory...Ch. 9 - Hydrogen selenide is one of nature's most...Ch. 9 - Use orbital diagrams to explain how the beryllium...Ch. 9 - Use orbital diagrams to describe the bonding in...Ch. 9 - 9.95 Use orbital diagrams to describe the bonding...Ch. 9 - Describe the bonding in tellurium hexafluoride, a...Ch. 9 - Draw Lewis structures for the following and use...Ch. 9 - Draw Lewis structures for the following and use...Ch. 9 - Use the VSEPR model to help you describe the...Ch. 9 - Use the VSEPR model to help you describe the...Ch. 9 - 9.101 Use orbital diagrams to show that the...Ch. 9 - What kind of hybrid orbitals are used by tin in...Ch. 9 - A nitrogen atom can undergo sp2 hybridization when...Ch. 9 - A nitrogen atom can undergo sp hybridization and...Ch. 9 - Tetrachloroethylene, a common dry-cleaning...Ch. 9 - 9.106 Phosgene, , was used as a war gas during...Ch. 9 - 9.107 What kind of hybrid orbitals do the numbered...Ch. 9 - What kind of hybrid orbitals do the numbered atoms...Ch. 9 - 9.109 What kinds of bonds are found in the...Ch. 9 - 9.110 What kinds of bondsare found in the numbered...Ch. 9 - Construct the molecular orbital diagram for O2....Ch. 9 - Construct the molecular orbital diagram for N2....Ch. 9 - Use the MO energy diagram to predict (a) the bond...Ch. 9 - Use the MO energy diagram to predict (a) the bond...Ch. 9 - Assume that in the NO molecule the molecular...Ch. 9 - 9.116 Assume that in the NO molecule the molecular...Ch. 9 - Which of the following molecules or ions are...Ch. 9 - 9.118 Which of the following molecules or ions are...Ch. 9 - *9.119 Construct the MO energy level diagram for...Ch. 9 - If boron and nitrogen were to form a molecule with...Ch. 9 - 9.121 Formaldehyde has the Lewis structure
What...Ch. 9 - Prob. 122RQCh. 9 - Antimony forms a compound with hydrogen that is...Ch. 9 - Describe the changes in molecular geometry and...Ch. 9 - Prob. 125RQCh. 9 - Prob. 126RQCh. 9 - Phosphorus trifluoride, PF3, has FPF bond angles...Ch. 9 - A six-membered ring of carbons can hold a double...Ch. 9 - The more electronegative are the atoms bonded to...Ch. 9 - Alone pair of electrons in the valence shell of an...Ch. 9 - *9.131 The two electron pairs in a double bond...Ch. 9 - In a certain molecule, ap orbital overlaps with a...Ch. 9 - *9.133 If we assign the internuclear axis in a...Ch. 9 - The peroxynitrite ion, OONO-, is a potent toxin...Ch. 9 - *9.135 An ammonia molecule, , is very polar,...Ch. 9 - There exists a hydrocarbon called butadiene, which...Ch. 9 - Prob. 137RQCh. 9 - 9.138 Five basic molecular shapes were described...Ch. 9 - 9.139 Compare and contrast the concepts of...Ch. 9 - Why doesnt a carbon-carbon quadruple bond exist?Ch. 9 - What might the structure of the iodine...Ch. 9 - The FF bond in F2 is weaker than the ClCl bond in...Ch. 9 - Molecular orbital theory predicts the existence of...Ch. 9 - The structure of the diborane molecule, B2H6, is...
Additional Science Textbook Solutions
Find more solutions based on key concepts
Determine [OH], [H+], and the pH of each of the following solutions. a. 1.0 M KCl b. 1.0 M KC2H3O2
Chemistry
2. A schedule of experiments for a laboratory indicates that the 1-bromobutane preparation is paired with the p...
The Organic Chem Lab Survival Manual: A Student's Guide to Techniques
The pHactivity profile for glucose-6-phosphate isomerase indicates the participation of a group with a pKa = 6....
Organic Chemistry (8th Edition)
Calculate the lattice energy of CaCl2 using a Born-Haber cycle and data from Appendices F and L and Table 7.5. ...
Chemistry & Chemical Reactivity
Predict the major product for each of the following reactions:
Organic Chemistry As a Second Language: Second Semester Topics
53. This reaction was monitored as a function of time:
A plot of In[A] versus time yields a straight ...
Chemistry: Structure and Properties (2nd Edition)
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
- Nitrogen trifluoride (NF3) is used in the electronics industry to clean surfaces. NF3 is also a potent greenhouse gas. (A) Draw the Lewis structure of NF3 and determine its molecular geometry. (B) BF3 and NF3 both have three covalently bonded fluorine atoms around a central atom. Do they have the same dipole moment? (C) Could BF3 also behave as a greenhouse gas? Explain why or why not.arrow_forwardThe structure of caffeine is shown below. (a) Complete the Lewis structure. (b) How many pi bonds are present in caffeine? How many sigma bonds? (c) Identify the hybridization of the carbon atoms. (d) What is the value of the O-C-N angle?arrow_forward. Assume that the third-period element phosphorus forms a diatomic molecule, P2, in an analogous way as nitrogen does to form N2. (a) Write the electronic configuration for P2. Use [Ne2] to represent the electron configuration for the first two periods. (b) Calculate its bond order. (c) What are its magnetic properties (diamagnetic or paramagnetic)?arrow_forward
- The Lewis structure of BH2Cl (a) Is the molecule polar or nonpolar? (b) What is the hybridization of the carbon atom? (c) What is the geometric shape of the molecule?arrow_forward(a) Find the angle u between adjacent nearest-neighbor bonds in the silicon lattice. Recall that each silicon atom is bonded to four of its nearest neighbors.The four neighbors form a regular tetrahedron— a pyramid whose sides and base are equilateral triangles. (b) Find the bond length, given that the atoms at the corners of the tetrahedron are 388 pm apart.arrow_forward(a) What is the physical basis for the VSEPR model?(b) When applying the VSEPR model, we count a double ortriple bond as a single electron domain. Why is this justified?arrow_forward
- (b) Arrange the following in decreasing order of bond length and bond angle with explanation C2H6, C2H4, C¿H2arrow_forwardExcept for nitrogen, the elements of Group 5A(15) all form pentafluorides and most form pentachlorides. The chlorine atoms of PCI5 can be replaced with fluorine atoms one at a time to give, successively, PCI4F, PCI3F2, .. PF5. (a) Given the relative sizes of F and CI, would you expect the first two F substitutions to be at axial or equatorial positions? O axial equatorial This answer has not been graded yet. (b) Which of the five fluorine-containing molecules have no dipole moment? (Select all that apply.) PCIF4 PCI3F2 PCI2F3 PF5 PCI4Farrow_forwardThe structural formulas for ethanol, CH3CH2OH, and propene, CH;CH=CH,2, are нн H Н—С—С—0—н H-C-C=C-H нн H H H Ethanol Propene (a) Complete the Lewis structure for each molecule showing all valence electrons. (b) Using the VSEPR model, predict all bond angles in each molecule.arrow_forward
- Acetylene 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_forward2.arrow_forwardTwo important industrial chemicals, ethene, C2H4, and propene, C3H6, are produced by the steam (or thermal) cracking process: 2C3H8(g) ⟶ C2H4(g) + C3H6(g) + CH4(g) + H2(g) For each of the four carbon compounds, do the following: (a) Draw a Lewis structure. (b) Predict the geometry about the carbon atom. (c) Determine the hybridization of each type of carbon atom.arrow_forward
arrow_back_ios
SEE MORE QUESTIONS
arrow_forward_ios
Recommended textbooks for you
- Chemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
INTRODUCTION TO MOLECULAR QUANTUM MECHANICS -Valence bond theory - 1; Author: AGK Chemistry;https://www.youtube.com/watch?v=U8kPBPqDIwM;License: Standard YouTube License, CC-BY