INTRO TO CHEMISTRY 6/E- CUSTOM W/MODIFI
6th Edition
ISBN: 9781323900109
Author: Tro
Publisher: PEARSON C
expand_more
expand_more
format_list_bulleted
Concept explainers
Textbook Question
Chapter 4, Problem 7E
Is matter usually charge-neutral? How would be different if it were not change-neutral?
Expert Solution & Answer
Want to see the full answer?
Check out a sample textbook solutionStudents have asked these similar questions
7. Is matter usually charge-neutral? How would matter be different if it were not charge-neutral?
What is the law of definite composition? And what are some examples of matters that obey this law?
A ______________________is the physical combining of two or more substances (not necessarily elements). The composition may vary, the substances retain their properties, and they may be separated by physical means.
Is it a compound or mixture?
Chapter 4 Solutions
INTRO TO CHEMISTRY 6/E- CUSTOM W/MODIFI
Ch. 4 - Q1. Which statement is not part of Dalton’s...Ch. 4 - Q2. Which statement best summarizes the nuclear...Ch. 4 - Q3. An ion composed of which of these particles...Ch. 4 - Which element is a maingroup metal with an even...Ch. 4 - Which element is a halo0gen? a. Ne b. O c. Ca d. ICh. 4 - Prob. 6SAQCh. 4 - Q7. Which element is a row 4 noble gas?
a. Ne
b....Ch. 4 - How many element does the predictable (most...Ch. 4 - Q9. How many neutrons does the Fe-56 isotope...Ch. 4 - Q10. Determine the number of protons, neutrons,...
Ch. 4 - Q11. What is the charge of the Cr ion that...Ch. 4 - An element has four naturally occurring isotopes;...Ch. 4 - What did Democritus contribute to our modern...Ch. 4 - 2. What are three man ideas in Dalton’s atomic...Ch. 4 - Describe Rutherfords gold foil experiment and the...Ch. 4 - What are the main ideas in the nuclear theory of...Ch. 4 - List the three subatomic particles and their...Ch. 4 - What is electrical charge?Ch. 4 - Is matter usually charge-neutral? How would be...Ch. 4 - 8. What does the atomic number of an element...Ch. 4 - What is a chemical symbol?Ch. 4 - Prob. 10ECh. 4 - What Dmitri Mendeleevs main contribution to our...Ch. 4 - What is the man idea in the periodic law?Ch. 4 - How is the periodic table organized?Ch. 4 - Prob. 14ECh. 4 - Prob. 15ECh. 4 - Prob. 16ECh. 4 - What is a family or group of elements?Ch. 4 - Locate each group of elements on the periodic...Ch. 4 - 19. What is an ion?
Ch. 4 - Prob. 20ECh. 4 - 21. Locate each group on the periodic table and...Ch. 4 - 22. What are isotopes?
Ch. 4 - Prob. 23ECh. 4 - Prob. 24ECh. 4 - What notations are commonly used to specify...Ch. 4 - What is the atomic mass of an element?Ch. 4 - 27. Which statement are inconsistent with Dalton’s...Ch. 4 - Which statements are consistent with Daltons...Ch. 4 - Which statements are inconsistent with Rutherfords...Ch. 4 - 30. Which statement are consistent with...Ch. 4 - Prob. 31ECh. 4 - 32. Rutherford’s experiment indicated that matter...Ch. 4 - 33. Which statement about electrons is true?
a....Ch. 4 - 34. Which statement about electrons is false?
a....Ch. 4 - 35. Which statement about protons is true?
a....Ch. 4 - 36. Which statement about protons is false?
a....Ch. 4 - 37. How many electrons would it take to equal the...Ch. 4 - A helium nucleus has two has two neutrons. How...Ch. 4 - What mass of electrons is required to neutralize...Ch. 4 - 40. What mass of protons is required to neutralize...Ch. 4 - Find the atomic number (Z) for each element. a. Fr...Ch. 4 - Prob. 42ECh. 4 - 43. How many protons are in the nucleus of an atom...Ch. 4 - How many protons are in the nucleus of an atom of...Ch. 4 - 45. List the symbol and atomic number of each...Ch. 4 - 46. List the symbol and atomic number of each...Ch. 4 - List the name and the atomic number of each...Ch. 4 - List the name and the atomic number of each...Ch. 4 - Fill in the blanks to complete the table. Element...Ch. 4 - Fill in the blanks to complete the table. Element...Ch. 4 - Classify each element as a metal, nonmetal, or...Ch. 4 - Classify each element as a metal, nonmetal, or...Ch. 4 - Which elements would you expect to lose electrons...Ch. 4 - 54. Which elements would you expect to gain...Ch. 4 - 55. Which elements are main group elements?
a....Ch. 4 - Which elements are not main-group elements? a. AI...Ch. 4 - 57. Which elements are alkaline earth metals?
a....Ch. 4 - Which elements are alkaline earth metal? a....Ch. 4 - 59. Which elements are alkali metals?
a. barium
b....Ch. 4 - Which elements are alkali metals? a. scandium b....Ch. 4 - Classify each element as a halogen, a noble gas,...Ch. 4 - Prob. 62ECh. 4 - 63. To what group number does each element...Ch. 4 - Prob. 64ECh. 4 - Which element do you expect to be most like...Ch. 4 - Which element do you expect to be most like...Ch. 4 - Which pair of elements do you expect to be most...Ch. 4 - Prob. 68ECh. 4 - 69. Which element is a main – group nonmetal?
a....Ch. 4 - Prob. 70ECh. 4 - Prob. 71ECh. 4 - Prob. 72ECh. 4 - Prob. 73ECh. 4 - Prob. 74ECh. 4 - Determine the change of each ion. a. oxygen ion...Ch. 4 - 76. Determine the charge of each ion.
a. tungsten...Ch. 4 - Determine the number of protons and electrons in...Ch. 4 - 78. Determine the number of protons and electrons...Ch. 4 - Prob. 79ECh. 4 - Determine whether each statement is true or false....Ch. 4 - Predict the ion formed by each element. a. Rb b. K...Ch. 4 - 82. Predict ion formed by each element.
a. F
b....Ch. 4 - Predict how many electrons each element will most...Ch. 4 - Predict how many electrons each element will most...Ch. 4 - 85. Fill in the blanks to compele the...Ch. 4 - Fill in the blacks to complete the table. Symbol...Ch. 4 - 87. Determine the atomic number and mass number...Ch. 4 - 88. How many neutrons are in an atom each atomic...Ch. 4 - 89. Write isotopic symbols in the form for each...Ch. 4 - Write isotopic symbol in the form X-A (for...Ch. 4 - Write the symbol for each isotope in the form XZA....Ch. 4 - Write the symbol for each isotope in the form XZA....Ch. 4 - 93. Determine the number of protons and neutrons...Ch. 4 - Determine the number of protons and neutrons in...Ch. 4 - Carbon 14, present within living organisms and...Ch. 4 - Plutonium-239 is used in nuclear bombs. Determine...Ch. 4 - Rubidium has two naturally occurring isotopes:...Ch. 4 - 98. Silicon has three naturally occurring...Ch. 4 - Bromine has two naturally occurring isotopes...Ch. 4 - Silver has two naturally occurring isotopes...Ch. 4 - 101. An element has two naturally occurring...Ch. 4 - Copper has two naturally occurring isotopes. Cu-63...Ch. 4 - Electrical charge is sometimes reported in...Ch. 4 - 104. How many excess protons are in a charged...Ch. 4 - 105. The hydrogen atom contains 1 proton 1...Ch. 4 - 106. Carbon-12 contains 6 protons and 6 neutrons....Ch. 4 - Prepare a table like Table 4.2 for the four...Ch. 4 - 108. Determine the number of protons and neutrons...Ch. 4 - Fill in the blanks to complete the table. Symbol Z...Ch. 4 - 110. Fill in the blanks to complete the...Ch. 4 - Europium has two naturally occurring isotopes:...Ch. 4 - Rhenium has two naturally occurring isotopes:...Ch. 4 - Chapter 1 describes the difference between...Ch. 4 - 114. Chapter1 describes the difference between...Ch. 4 - The atomic mass of fluorine is 19. 00 amu, and all...Ch. 4 - 116. The atomic mass of germanium is 72.61 amu. Is...Ch. 4 - Prob. 117ECh. 4 - Gallium has only two naturally occurring isotopes,...Ch. 4 - 119. The figure shown here is a representation of...Ch. 4 - 120. Neutron stars are believed to be composed of...Ch. 4 - 121. Complete the following...Ch. 4 - Prob. 122QGWCh. 4 - Prob. 123QGWCh. 4 - Prob. 124QGWCh. 4 - 125. The graph at the right shows the atomic...
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
- a Which of the following substances would you expect to be elements and which would you expect to be compounds? 1 aluminum sulfate; 2 osmium; 3 radon; 4 lithium carbonate; 5 dimethylhydrazine. b On what general rule do you base your answers to part a? Can you name any exceptions to this general rule for compounds?arrow_forwardIn 1886 Eugene Goldstein observed positively charged particles moving in the opposite direction to electrons in a cathode ray tube (illustrated below). From their mass, he concluded that these particles were formed from residual gas in the tube. For example, if the cathode ray tube contained helium, the canal rays consisted of He+ ions. Describe a process that could lead to these ions. Canal rays. In 1886, Eugene Goldstein detected a stream of particles traveling in the direction opposite to that of the negatively charged cathode rays (electrons). He called this stream of positive particles "canal rays:"arrow_forwardIn a reproduction of the Millikan oil-drop experiment, a student obtains the following values for the charges on nine different oil droplets. (a) Based on these data alone, what is your best estimate of the number of electrons on each of the above droplets? (Hint: Begin by considering differences in charges between adjacent data points, and see into what groups these are categorized.) (b) Based on these data alone, what is your best estimate of the charge on the electron? (c) Is it conceivable that the actual charge is half the charge you calculated in (b)? What evidence would help you decide one way or the other?arrow_forward
- Constant Composition of Compounds Two samples of sugar are decomposed into their constituent elements. One sample of sugar produces 18.0 g carbon, 3.0 g hydrogen, and 24.0 g oxygen; the other sample produces 24.0 g carbon, 4.0 g hydrogen, and 32.0 g oxygen. Find the ratio of carbon to hydrogen and the ratio of oxygen to hydrogen for each of the samples, and show they are consistent with the law of constant composition.arrow_forwardDefine the terms matter and mass. What is the difference between mass and weight?arrow_forwardWhat is acompound? What are compounds composed of? What is true about the composition of a compound, no matter where we happen to find the compound?arrow_forward
- A student places a sample of a pure metal in a crucible and heats it strongly in air. Data from the experiment are given in the table above. The final mass was determined after the sample was cooled to room temperature. Which of the following statements related to the experiment is correct? (See attached table) a.) The mass of the sample decreased, so physical changes occurred as the metal first melted and then boiled out of the crucible. b.) The mass of the sample increased, so a chemical change occurred when bonds formed between the metal and another substance. c.) There was nothing for the metal to react with, so only a physical change could have occurred. d.) The sample was only heated, so neither a physical nor a chemical change occurred.arrow_forwardSince 1800, almost 200 sincere but erroneous reports ofthe discovery of new chemical elements have been made.Why have mistaken reports of new elements been sonumerous? Why is it relatively easy to prove that a material is not a chemical element, but difficult to prove absolutely that a material is an element?arrow_forwardMatter consists of tiny particles that can combine in specific ratios to form substances with specific properties. Which type of statement is this most similar to?arrow_forward
- What is another common situation in which a chemical change also leads to a physical change?arrow_forwardWhat is an element? A. A substance that can be separated by physical means B. A substance that cannot be broken into simpler substances C. A substance that is made using a chemical reaction D. A substance that is made from two different metalsarrow_forward
arrow_back_ios
arrow_forward_ios
Recommended textbooks for you
- General Chemistry - Standalone book (MindTap Cour...ChemistryISBN:9781305580343Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; DarrellPublisher:Cengage LearningChemistry for Today: General, Organic, and Bioche...ChemistryISBN:9781305960060Author:Spencer L. Seager, Michael R. Slabaugh, Maren S. HansenPublisher:Cengage LearningWorld of Chemistry, 3rd editionChemistryISBN:9781133109655Author:Steven S. Zumdahl, Susan L. Zumdahl, Donald J. DeCostePublisher:Brooks / Cole / Cengage Learning
- Introductory Chemistry: An Active Learning Approa...ChemistryISBN:9781305079250Author:Mark S. Cracolice, Ed PetersPublisher:Cengage LearningLiving By Chemistry: First Edition TextbookChemistryISBN:9781559539418Author:Angelica StacyPublisher:MAC HIGHERChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning
General Chemistry - Standalone book (MindTap Cour...
Chemistry
ISBN:9781305580343
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Publisher:Cengage Learning
Chemistry for Today: General, Organic, and Bioche...
Chemistry
ISBN:9781305960060
Author:Spencer L. Seager, Michael R. Slabaugh, Maren S. Hansen
Publisher:Cengage Learning
World of Chemistry, 3rd edition
Chemistry
ISBN:9781133109655
Author:Steven S. Zumdahl, Susan L. Zumdahl, Donald J. DeCoste
Publisher:Brooks / Cole / Cengage Learning
Introductory Chemistry: An Active Learning Approa...
Chemistry
ISBN:9781305079250
Author:Mark S. Cracolice, Ed Peters
Publisher:Cengage Learning
Living By Chemistry: First Edition Textbook
Chemistry
ISBN:9781559539418
Author:Angelica Stacy
Publisher:MAC HIGHER
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Types of Matter: Elements, Compounds and Mixtures; Author: Professor Dave Explains;https://www.youtube.com/watch?v=dggHWvFJ8Xs;License: Standard YouTube License, CC-BY