Lab safety and equipment: Sig Figs and Metric Conversions. Matter. Chemistry Review

Similar documents
Lab safety and equipment: Sig Figs and Metric Conversions. Matter. Chemistry Review

Lab safety and equipment: Sig Figs and Metric Conversions. Matter. Chemistry Review

Ch. 1: Introduction to Chemistry. Ch. 2: Matter and Change

Chemistry 1-2E Semester I Study Guide

Academic Chemistry 2016 Fall Final Exam Review DUE THE DAY YOU TAKE THE FINAL FOR 5 BONUS POINTS on the final exam

Chemistry CRT Study Guide First Quarter

Groups vs. Periods what s the difference?? Groups: Periods:

b. Na. d. So. 1 A basketball has more mass than a golf ball because:

Chemistry Mid-Term Exam Review Spring 2017

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

Units 1, 2 study guide- atomic structure

UNIT 1: Matter & Lab Safety

Honors Chemistry Semester 1 Final Review

Volume of water g g? 50.0 ml ?

4. Draw a concept map showing the classifications of matter. Give an example of each.

Period: Chemistry Semester 1 Final Exam Review Packet. 1. What is the difference between a hypothesis and a theory?

HONORS CHEMISTRY. Chapter 1 Introduction to Chemistry 1. What is chemistry?

Atomic Structure Chapter 5 Assignment & Problem Set

First Semester Final Exam Study Guide

Chapter 9: Elements are the Building blocks of Life

2. Which is NOT considered matter? (A) air (B) lead (C) sugar (D) sunlight. 4. Which of the following is a metalloid? (A) Se (B) Sr (C) Si (D) Sn

Honors Chemistry Study Guide: Chemical Nomenclature, Introduction to the Atom (ch 4, sections 1-3) and the Periodic Table (ch 6, sections 1-2)

AE Chemistry Midterm Study Guide

Physical Science Study Guide

Solid Gas Liquid Plasma

CP Chemistry Final Exam Review

Name: Period: CHEMISTRY I HONORS SEMESTER 1 EXAM REVIEW

Periodic Table of Elements

Spring Semester Final Exam Study Guide

Chemistry Midterm Exam Review Sheet Spring 2012

Chapter 1 Introduction to Chemistry 1. What is chemistry?

Memorize: Understand: Know how to:

General Chemistry First Semester Final Exam Study Guide 60 multiple choice questions

CP Chemistry Final Exam Review

Periodic Table Workbook

Name: Unit 1: Nature of Science

Chemistry Final Exam Study Guide Fall Semester


There is more here than would be on the test, but this is a good example of the types of questions you will encounter.

Unit 1 Study Guide Chemistry. Subatomic particle Charge Relative size

CHM 1045 Qualifying Exam

1 st Semester Final Review Sheet (Chapters 2-7)

Chemistry Study Guide

1. The elements on the periodic table are arranged by increasing A) atomic weight. B) atomic number. C) valence electrons. D) mass number.

3. Most laboratory experiments are performed at room temperature at 65 C. Express this temperature in: a. F b. Kelvin

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

ACP Chemistry (821) - Mid-Year Review

Unit Five- Chemical Quantities Chapter 9: Mole ratios, conversions between chemicals in a balanced reaction (mole, mass), limiting reactant, % yield

5. Name three characteristics of most metalloids. Semiconductors of electricity, solid at room temperature, less malleable that metals.

CHE 105 Exam 1 Spring 2016

Chemistry 9 Weeks Exam Review Guide

Chem 101 Review. Fall 2012

Chemistry Unit 1: Matter Outcome Study Guide

Review Multiple Choice Questions

2. Identify each of the following samples of matter as heterogeneous or homogeneous.

10. In what way are isotopes of a given element always different? In what way(s) are they always the same?

Chemistry Final Review 2017

Science 9 Chemistry Objectives Greene s Study Guide. By the end of this unit, students are expected to be able to. -WHMIS -MSDS

2014 Chemistry 1 st Semester Exam Review Packet

ACCELERATED CHEMISTRY SEMESTER 1 PROBLEM SHEET

Lesson 6: Periodic Table & Atomic Theory

Atoms, Elements, and the Periodic Table Unit Assessment (2016) Page 1 of 13

Final Review -- Chemistry Fall Semester Period Date. Using the word bank provided on each page, complete the following study guide.

The Mole Unit Acc Chemistry

Final Exam Study Guide Honors Chemistry Semester Multiple Choice Questions

CHAPTER 2. Structure of the Atom. Atoms and Elements

Honor s Chemistry: Fall Semester Final

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

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

NAME: DATE: CLASS: Chapter Metallic Bonding

Name: Unit 1: Nature of Science

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

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?

Law of Definite Proportion** (Proust): A given compound always contains exactly the same proportion of elements by mass.

new experimental data, and can be modified

4) A specific isotope of an element is known to have 15 protons and 16 neutrons. Which symbol would properly represent this isotope?

Lesson 6: Periodic Table and Atomic Theory

Name: 1. Show all work on Math Problems!!! Significant Figures and Calculations (*all math problems will require the use of sig figs)

Elements and the Periodic Table

Chapter 2 Atoms and Elements

Identify the five scientists that progressed atomic structure Illustrate each scientist s model of the atom

A sample of carbon dioxide has a volume of 28.7 L and a mass of 52.5 g at 20 C. Determine the density of carbon dioxide at this temperature.

3.1 Classification of Matter. Copyright 2009 by Pearson Education, Inc.

VOCABULARY define the following terms:

Part A Answer all questions in this part.

Chemistry. The building blocks of matter Made of protons, neutrons and electrons. Pure substances that cannot be separated.

Name Pd SN Date Chemistry Review Packet- Spring 2014

Name: Class Period: Due Date: Unit 2 It s Elemental Test Review

Matter has mass and occupies space.

A1 Models of the atom. A2 Size of the atom

Atoms, molecules, bonding, periodic table

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

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

Chemistry B11 Chapter 3 Atoms

World of Chemistry Notes for Students [Chapter 4, page 1] Chapter 4 Nomenclature

AP CHEMISTRY THINGS TO KNOW

VOCABULARY define the following terms:

UNIT (2) ATOMS AND ELEMENTS

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

Physical Science Midterm Review

Transcription:

Lab safety and equipment: Chemistry Review Know: How to handle chemicals and laboratory equipment safely. Basic laboratory equipment Sig Figs and Metric Conversions Significant Figures How many significant figures are in the following measurements? 0.012 g 1,003 ml 0.12300 g 7.54 x 10 3 m 5,000 cm 3 5,000.00 nm Convert from one metric unit to another metric unit 100 meters = cm 230 ml = Liters 0.062 kilograms = mg 7 cm = km Matter What is matter composed of? Define matter. Define each of the following. mass: volume: length: temperature: Density Define density.

Calculate density. object s density? If a given object has a mass 100.0 g and a volume of 25.0 ml. What is this Given the following 3 rings: Ring 1 Ring 2 Ring 3 And given that each ring is made out of pure gold, answer the following questions: What can you say about the relationship between the mass and volume as you compare the 3 rings? Which ring would have the greatest mass? Which ring would have the greatest density? How can we classify matter based on its composition? Matter can be classified into what 3 states? Which 2 categories are composed of more than one type of substance? and Which category has a chemical formula? Which category can be found on the periodic table? Which category can be separated? Illustrate, describe and label the 2 types of mixtures.

How do physical properties compare with chemical properties of substances? Complete the chart on chemical properties. Chemical Properties (Define/Explain) Ability to Burn Ability to Rust Complete the chart on physical properties. Physical Properties (Define/Explain) Melting Point Boiling Point Density Color How do physical and chemical changes of substances compare? Explain what a physical change is. What are two types of evidences that a physical change occurred? Explain what a chemical change is.

What are the four types of evidences that a chemical change occurred? Complete the chart explaining the evidences of chemical and physical changes. Evidence of Change Explanation Physical or Chemical? Change in size/shape Formation of a Gas Change in state of matter Formation of a Precipitate Change of Color Change in Temperature Classify the following as physical or chemical changes: a. spoiling of milk b. bending wire c. cutting paper d. rusting of a nail

Atoms List 3 facts about ATOMS. Atomic Models: Scientists: What was the contribution of each one s atomic model? Draw a model of each. John Dalton List the four postulates of Dalton s Atomic Theory: J.J. Thompson Ernest Rutherford Niels Bohr Characteristics of subatomic particles Particle Charge Location in atom Proton Neutron Electron

Atoms and Ions How do atoms and ions differ? Fill out the chart on atoms and ions Element # of protons # of neutrons # of electrons Atomic number Mass number Atom or Ion? 26 56 Iodine 127 Atom 16 18 32 Define the term isotope. 14 Fill in the following for this Carbon 14 isotope, 6 C Atomic number = Mass number = # of protons = # of electrons = # of neutrons = Atomic Masses: What is the difference between the mass number for Carbon 14 and carbon s atomic mass of 12.011 amu? The Periodic Table How is the periodic table organized? What are the rows going across called? The are the columns going up and down. A uses a capital letter followed by a lowercase (in some cases) to represent each element.

Complete the following table with the correct information. ELEMENT SYMBOL ATOMIC # FAMILY PERIOD METAL OR NONMETAL Oxygen Na 6 Hydrogen Cl 7 Locate or define parts of the periodic table: Transition metals vs. Representative Elements Alkali metals, Alkaline Earth metals, Halogens, Noble Gases A B C D On the table above 1. Label the A groups (i.e. IA, IIA, IIIA, etc.) 2. Label the Alkali Metal family. This is also known as group. All elements in this family have valance electron. These elements form an ion with a charge. 3. Label the Alkaline-Earth Metal family. This is also known as group. All elements in this family have valance electrons. These elements form an ion with a charge.

4. Color the transition metals blue. 5. Label the Halogen family. This is also known as group. All elements in this family have valence electrons. These elements form an ion with a charge. 6. Label the Noble Gas family. This is also known as group. All elements in this family have valence electrons. Using the periodic table on page 5 of this study guide, answer the following questions: 1. Which element stands alone in its family? 2. Which element has a larger atomic radius A or C? 3. Which element has a larger atomic radius C or D? 4. Which element has a higher electronegativity? A or B? 5. Which element has a higher ionization energy? C or D? Elements in the same (group, period) have similar physical and chemical characteristics because the they have the same number of (atoms, protons, neutrons, electrons, valence electrons). From their positions on the periodic table, what charges would the ions of Be and N have? Gains or loses electrons? Symbol for ion Gains or loses electrons? Symbol for ion Be N How do the physical properties of metals and nonmetals differ? PHYSICAL PROPERTIES can be measured or observed changing the substance.

Complete the table for each property. PROPERTY ILLUSTRATION/DESCRIPTION METAL OR NONMETAL? Ductile Luster Malleable Conductivity Brittle High Density Naming Molecular and Ionic Compounds What do chemical formulas represent? Write the common name for each of the following chemical formulas. H 2 O C 6 H 12 O 6 O 2 NaCl CO 2 N 2 Tell how many atoms of each element are present in the chemical formulas. A. H 2 O 2 b. HClO 4 Naming molecular compounds Name: N 2 O: and NO 2 Naming Ionic Compounds Name: Li 2 O and (NH 4 ) 2 SO 4 Name: FeO and Sn 3 (PO 4 ) 4 Name: NaHCO 3 and CuCl 2 Naming Acids Name: HI and HNO 3 Name: H 2 SO 3 and H 3 PO 4

Formulas of Molecular and Ionic Compounds Write formulas for the following compounds: Water silicon dioxide Phosphorous trihydride dioxygen difluoride Lead (II) hydroxide chromium (III) sulfate Write formulas for the following ionic compounds: Ba 2+ with OH iron (III) sulfide Na + with OH NH 4 + with PO 4 3 magnesium oxide Write formulas for the following acids: Hydrobromic acid Nitrous acid Sulfuric acid Hydrochloric acid The Mole Mole Conversions SOLVE THE FOLLOWING MOLAR CONVERSION PROBLEMS: 1. How many grams would 8.1 10 21 molecules of sucrose (C 12 H 22 O 11 ) weigh? 2. How many moles are in 53.8 g of magnesium chloride? 3. How many atom are in 0.845 moles of NaNO 3? 4. How many molecules are in 50.0 g of calcium sulfide? 5. How many atoms are in a 2.0 kg nugget of gold? (Note mass units.)