Unit 2 Review Please note that this does not start on question 1.

Similar documents
CHM 100 CHEMISTRY MAN & ENVIRONMENT Atoms and Elements Sample Test

Periodic Table Workbook

1. The elements on the Periodic Table are arranged in order of increasing A atomic mass C molar mass

1. The elements on the Periodic Table are arranged in order of increasing A atomic mass C molar mass

Regan & Johnston Chemistry Unit 3 Exam: The Periodic Table Class Period

Test Review # 4. Chemistry: Form TR4-9A

2. Why do all elements want to obtain a noble gas electron configuration?

1. The arrangement of the elements from left to right in Period 4 on the Periodic Table is based on

Chemistry Chapter 9 Review. 2. Calculate the wavelength of a photon of blue light whose frequency is 6.3 x s -1.

Chapter 2: The Structure of the Atom and the Periodic Table

Practice Packet Unit: 5 Periodic Table

Valence electron- Energy sublevel- Transition element- Period 10. Electronegativity- Alkaline earth metal- 11. Ion- Halogen- 12.

Part A. Answer all questions in this part.

Organizing the Periodic Table

Periodic Table Practice 11/29

Assessment Chapter 5 Pre-Test Chapter: The Periodic Law Use the periodic table below to answer the questions in this Chapter Test.

Why is it called a periodic table?

Test Review # 4. Chemistry: Form TR4-5A 6 S S S

Periodic Table Practice Questions

Periods: horizontal rows (# 1-7) 2. Periodicity the of the elements in the same group is explained by the arrangement of the around the nucleus.

Chapter 4 Atoms Practice Problems

Regan & Johnston Chemistry Unit 3 Exam: The Periodic Table Class Period

Name PRACTICE Unit 3: Periodic Table

Test Review # 5. Chemistry: Form TR5-8A. Average Atomic Mass. Subatomic particles.

Exam Electrons and Periodic Table

PERIODIC TRENDS AND THE PERIODIC TABLE

Name: Class: Date: SHORT ANSWER Answer the following questions in the space provided.

Chapter #2 The Periodic Table

Unit 5. The Periodic Table

MOSELEY and MODERN PERIODIC TABLE (designed by atomic numbers of elements)

Practice Periodic Table Review

Valence Electrons. Periodic Table and Valence Electrons. Group Number and Valence Electrons. Learning Check. Learning Check.

UNIT (2) ATOMS AND ELEMENTS

Honors Chemistry: Chapter 4- Problem Set (with some 6)

Nihal İKİZOĞLU. MOSELEY and MODERN PERIODIC TABLE (designed by atomic numbers of elements) kimyaakademi.com 1

The Quantum Mechanical Model

What is the smallest particle of the element gold (Au) that can still be classified as gold? A. atom B. molecule C. neutron D.

Test Topics: Periodic Table, Atomic Theory, Physical/Chemical Properties, Atom, Isotopes, Average Atomic Mass

Chapter 1. I- Fill the following table. Element symbol and the mass no. n p n n n e. number. II - Choose the correct answer for the following: Ca-40

Unit 7 Study Guide: Name: KEY Atomic Concepts & Periodic Table

Test 3: Lab Safety, Measurements, Matter and Periodic Table

Chapter 2: Atoms and the Periodic Table

CHAPTER 6. Table & Periodic Law. John Newlands

Review Package #3 Atomic Models and Subatomic Particles The Periodic Table Chemical Bonding

CHAPTER 2 Atoms and the Periodic Table

Periodic Trends. Name: Class: Date: ID: A. Matching

The Periodic Law Notes (Chapter 5)

Name: Teacher: Gerraputa

Fundamentals of General, Organic, and Biological Chemistry, 7e (McMurry) Chapter 2 Atoms and the Periodic Table

Periodic Relationships

Periodic Relationships

Getting to know the Periodic Table: Recall: Elements are organized based on atomic number and similar properties

HSVD Ms. Chang Page 1

CDO AP Chemistry Unit 5

Unit 3 Periodic Table and Quantum HW Packet Name Date. Periodic Table Concepts. 1. In what family are the most active metals located?

Principles of Chemistry: A Molecular Approach (Tro) Chapter 2 Atoms and Elements

CHEMISTRY 110 EXAM 1 SEPTEMBER 20, 2010 FORM A

Chemistry 1 1. Review Package #3. Atomic Models and Subatomic Particles The Periodic Table Chemical Bonding

Mendeleev s Table (1871) While it was the first periodic table, Mendeleev had very different elements, such as the very reactive potassium and the

Chemistry B11 Chapter 3 Atoms

Topics for Test on Chapter 6: The Periodic Table & Periodic Law

Periodic Trends. 1. Why is it difficult to measure the size of an atom? 2. What does the term atomic radius mean? 3. What is ionization energy?

Dobereiner developed concept of Triads (groups of 3 elements with similar chemical properties) Average of 1st and 3rd

The Periodic Table and Periodic Law

Electrons and Periodic Table (Ch. 4 & 5) OTHS Academic Chemistry

Classify each of these statements as always true, AT; sometimes true, ST; or never true, NT.

Unit 2 Chapters 5 and 6 Atoms/Periodic Table/ NOMENCLATURE NAMING AND FORMING COMPOUNDS

Chemistry Common 2. A. Na B. Mg C. Ne D. Ag. 2. In the modern Periodic Table, the elements are arranged in order of increasing

Honors Chemistry Unit 4 ( )

Introduction period group

Unit 3: Atoms and Periodic Table Retake Review Packet

The Periodic Table. Atoms, Elements, and the Periodic Table

Winter Break Packet Absence makes the mind go blank. You will thank me for this later.

Test 5: Periodic Table, Ionic, and Molecular Compounds

Notes: Electrons and Periodic Table (text Ch. 4 & 5)

Chapter 3: Elements and Compounds. 3.1 Elements

Development of the Periodic Table

Chapter 6 The Periodic Table

Unit 1 Study Guide Chemistry. Subatomic particle Charge Relative size

CHEMISTRY 9 REVIEW & INTRO TO CHEMISTRY 10. Section 4.1: Atomic Theory and Bonding

5. The outermost principal energy level electron configuration of the element bromine is: a. 4s 2 c. 4s 2 4p 5 b. 4p 5 d.

Unit 1: Analyzing Data 1. Measure the following using the appropriate number of significant digits. Name Hour Date. b. o C

Ch. 4 Sec. 1-2, Ch. 3 sec.6-8 ENERGY CHANGES AND THE QUANTUM THEORY THE PERIODIC TABLE

Regents review Atomic & periodic

Electron configurations follow the order of sublevels on the periodic table.

Note that the protons and neutrons are each almost 2,000 times more massive than an electron; What is the approximate diameter of an atom?

Electron Configurations and the Periodic Table

Principles of Chemistry: A Molecular Approach 2e (Tro) Chapter 2 Atoms and Elements

Units 1, 2 study guide- atomic structure

Unit 2 Part 2: Periodic Trends

Chapter 7 Electron Configuration and the Periodic Table

The Atom. The Atom and The Periodic Table of Elements. Evolution of Atomic Theory

Unit 4 - Periodic Table Exam Name: PRACTICE QUESTIONS Date: 2/23/2016

UNIT #3: Electrons in Atoms/Periodic Table and Trends

CP Chemistry Semester 1 Final Test Review 1. Know the symbol and the power of 10 for the following metric prefixes: A. Mega B.

Chemistry: A Molecular Approach, 2e (Tro) Chapter 2 Atoms and Elements. Multiple Choice Questions

Unit Five Practice Test (Part I) PT C U5 P1

The Periodic Table & Formation of Ions

Name: 1. The mass of a proton is approximately equal to the mass of (1) an alpha particle (2) a beta particle (3) a positron (4) a neutron

Unit 02 Review: Atomic Theory and Periodic Table Review

Transcription:

Unit 2 Review Please note that this does not start on question 1. 21. Of the three particles; protons, neutrons, and electrons, which one(s) are responsible for most of the mass of an atom? a) the protons only b) the electrons only c) the neutrons only d) the protons and neutrons e) the protons and electrons Questions 22-25 refer to the following terms. Each answer may be used once, more than once, or not at all. a) proton c) electron b) neutron d) proton and neutron 22. Moves very quickly around the nucleus. 23. Has a mass of 1 amu. 24. Has a charge of -1. 25. Defines the volume of the atom. 26. If you constructed an atomic model the size of the classroom, the nucleus might be formed from a) several softballs b) several ping pong balls c) several pieces of sand 27. The modern periodic table has the elements arranged in order of increasing a) electron energy c) atomic size b) atomic number d) molar mass 28. Which element would be the best conductor? a) Sn c) As b) S d) P Questions 29 32 refer to the following families. Each answer may be used once, more than once, or not at all. a) halogen family b) alkaline earth metal family c) alkali metal family d) noble gas family 29. Very unreactive 30. Form 2+ ions 31. React with water 32. Includes Ca, Mg, and Ba 33. The fact that hydrogen forms diatomic molecules makes it similar to the family. a) halogen c) noble gas b) alkali metal d) alkaline earth metal 34. The fact that hydrogen has one valence electron makes it similar to the family. a) halogen c) noble gas b) alkali metal d) alkaline earth metal 35. Properties of metals include: a) brittleness b) poor conductivity c) dull surface d) can be pounded into sheets 36. Which family contains examples of metals, semimetals, and non-metals? a) H/Li c) F/Cl b) C/Si d) He/Ne 37. List the elements, P, As, S in order of largest to smallest atomic radius. a) P > As > S c) S > P > As b) As > P > S d) P > S > As

38. When a neutral Cl atom becomes a Cl ion how and why does the size change? a) bigger / more electron-electron repulsion b) smaller / more electron-proton attraction c) bigger / more electron-proton repulsion d) smaller / more electron-electron attraction 39. Where are the largest atoms located on the periodic table? a) upper right c) upper left b) lower right d) lower left Questions 40 42 refer to the iron, Fe, atom: 40. Fill in the orbital diagram for Fe (Z=26). 4s 4p 3s 3p 2s 2p 3d Questions 44 46 refer to the sulfur, S, atom: 44. Fill in the orbital diagram for S (Z=16). 4s 4p 3s 3p 2s 1s 2p 3d 45. How many orbitals in sulfur have only one electron? a) zero c) 2 b) 1 d) 3 46. How many electrons in sulfur are available for bonding (valence electrons)? a) 2 c) 6 b) 4 d) 8 1s 41. Iron s electrons that are farthest from the nucleus occupy the orbital. a) 4s c) 3p b) 4p d) 3d 42. Iron s electrons that have the highest energy occupy the orbital. a) 4s c) 3p b) 4p d) 3d 43. Which electrons are being placed into orbitals correctly? a) c) b) d) 47. Which element below has the greatest ionization energy? a) Na c) Mg b) K d) Ca Questions 48 51 refer to an isotope with a mass number of 31, 16 protons, and a charge of 2-. 48. The atomic number is. 49. The isotope contains electrons. 50. The nucleus contains neutrons. 51. The element is. a) Si b) P c) S d) Ar

52. Give the 4 quantum numbers for sulfur. a) 3, 1, -1, ½ c) 3, 2, -1, -1/2 b) 3, 1, -1, -1/2 d) 3, 2, -1, 1/2 53. Give the 4 quantum numbers for Iron. a) 3, 2, -2, -1/2 c) 3, 3, -2, -1/2 b) 3, 2, 2, -1/2 d) 3, 3, 2, -1/2 54. How many electrons can fit into a d sublevel? a) 2 b) 6 c) 10 d) 14 55. How many electrons can fit on n=5? a) 18 b) 25 c) 36 d) 50 56. A photon has 4.67 x 10-21 J of energy what is the wavelength in meters? a) 4.25 x 10-5 c) 1.98 x 10-25 b) 9.27 x 10-46 d) 23500 74. Cl will be isoelectronic with the noble gas,, when it (gains / loses) 1 e. 1. Define a family. 2. What is a period? 3. What is the symbol for the following elements. a. Magnesium b. Potassium 4. What are the names of the following elements. a. C b. Cl 5. What period are the following elements in? a. He b. Ge 6. What group are the following elements? a. Sulfur b. Ca 7. Give me an atom with the following characteristics. a. Halogen b. Nonmetal c. Alkali metal d. metalloid e. Lanthanide series f. Alkaline Earth metal g. Transition metal h. Nobel gas

8. Write the electron longhand and shorthand configuration for a. Li b. Na c. K 9. What are valence electrons? 10. How many valence electrons are in the following element? a. F b. Cl c. Br d. I e. O f. S g. Se h. Te On the blank periodic table below 11. Label the s, p, d, and f block elements 12. Create a circle that fills the whole box where the largest atom exists in the periodic table. 13. Put a dot where the smallest atom is in the periodic table. 14. Put a triangle on the box with the atom with the highest electronegativity 15. Put a square in the box with the lowest ionization energy 16. Label with arrows the trends for: atomic radius, ionic radius (metals and nonmetals), ionization energy, and electronegativity

From Electron Configuration Notes: 37. What is the shape of the s orbital? p orbital? d orbital? 38. Which of the following orbitals is closest to the nucleus? a. 2s b. 3p c. 1s d. 4d 39. In the wave-mechanical (quantum) model of the atom, orbitals are regions of the most probable locations of: a. protons b. positrons c. neutrons d. electrons 41. Identify the following atom, 1s 2 2s 2 2p 6 3s 2 3p 6 4s 2 3d 6 42. Write out the orbital notation and give the quantum numbers for F, N, Zn: 43. Write the electron configuration for the above elements: 44. Write the shorthand (noble gas) notation for the above elements: F: _ F 1 : _ Zn: _ Zn 2-- : Sr: Sr 1+ :