Section 3.1 The Elements

Similar documents
CHAPTER 3. Chemical Foundations

Ch. 3 Answer Key. O can be broken down to form two atoms of H and 1 atom of O. Hydrogen and oxygen are elements.

Chapter 4: Chemical Foundation: Elements, Atoms and Ions

Chapter 3: Atomic Theory

Atomic Structure. Chapter 3

Chapter 2 Atoms, Ions, and the Periodic Table. Law of Conservation of Mass. Law of Conservation of Mass

Chapter 4 (part 1) Chemical Foundations: Elements, Atoms, and Ions. Copyright Cengage Learning. All rights reserved 1

Principles of Chemistry: A Molecular Approach, 3e (Tro) Chapter 2 Atoms and Elements

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

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?

2/15/2013. Chapter 6 6.1

Chapter 4 Atoms Practice Problems

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

Periodic Table of Elements

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

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

Unit 2. Chemical Foundations: Elements, Atoms, and Ions

Exam Accelerated Chemistry Study Sheet Chap 04 The Atom/Periodic Table

Chapter 4 Atoms and Elements

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

Part I Assignment: Electron Configurations and the Periodic Table

Organizing the Periodic Table

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

Physical Science Midterm Review

Chapter 2 Atoms and the Periodic Table

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

UNIT (2) ATOMS AND ELEMENTS

Atoms, Ions, and the Periodic Table

2. Read pages a. Answer the five Reading Check questions on page 47

Chapter 2. Atoms, Molecules, and Ions. Copyright 2018 Cengage Learning. All Rights Reserved.

-discovered set of patterns that applied to all elements published 1st periodic table. -wrote properties of each on note cards (density, color)

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

Full file at

Elements. Review Questions. Copyright 2017 Pearson Canada Inc.

Unit 2. Atoms, Molecules, and Ions

Chapter 2 Atoms and Elements

Periodic Table Practice 11/29

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

The Periodic Table & Formation of Ions

Periodic Table Workbook

Atoms and Elements Class Notes and Class Work

Chapter 2 The Structure of Matter and the Chemical Elements

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

Regents review Atomic & periodic

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.

ATOMIC STRUCTURE. Atoms are really small. Gold and Palladium Atoms

Basic Concepts of Chemistry Notes for Students [Chapter 2, page 1] D J Weinkauff - Nerinx Hall High School

Unit 3. Atoms and molecules

Chapter 9: Elements are the Building blocks of Life

ATOMS AND ELEMENTS. Evolution of Atomic Theory

Chapter 1: Atoms, Molecules and Ions

Chapter 2. Atoms, Ions, and the Periodic Table. Chapter 2 Topics. 2.1 Dalton s s Atomic Theory. Evidence for Atoms. Evidence for Atoms

Worksheet #1: Atomic Spectra Answer the following questions using your Unit 3 notes.

UNIT 2: Matter and its changes. Mrs. Turner

Chapter 2 Atoms and Elements

Physical Science Study Guide

Unit 2 continued-chemical Foundations Atoms, Ions, &Elements

Modern Atomic Theory

1. Demonstrate knowledge of the three subatomic particles, their properties, and their location within the atom.

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

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

Unit 3 Atomic Structure

Searching for an Organizing Principle. Searching for an Organizing Principle. How did chemists begin to organize the known elements?

Chapter 02 Test Bank: Atoms, Ions, and the Periodic Table

Warm Up 9/17/12. How long have people been interested in understanding matter and its structure? A. Thousands of years. B.

DATE: NAME: CLASS: BLM 1-9 ASSESSMENT. 2. A material safety data sheet must show the date on which it was prepared.

Atomic Structure and the Periodic Table. AQA Chemistry topic 1

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

Part A Unit-based exercise

Developing the Periodic Table

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

Chapter 2: Atoms and the Periodic Table

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

Atoms and Elements Review

Atomic Class Packet Unit 3

A pure substance that cannot be broken down into simpler substances Elements are made up of identical atoms

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

Fundamentals of General, Organic & Biological Chemistry 4 th Edition. Matter and Life

THE PERIODIC TABLE. Dr Marius K Mutorwa

Matter and Energy. Chapter 3

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

ATOMIC MATH HOMEWORK

Science Class 9 th ATOMS AND MOLECULES. Symbols of Atoms of Different Elements. Atomic Mass. Molecules. Ions. Mole Concept. Finish Line & Beyond

2) Complete the following table. Take into account that all the atoms in it are neutral atoms: Copper Uranium Phosphorus 15 16

Name Honors Chemistry: Atoms, protons, electrons, neutrons, and the Periodic Table

Every element has its own unique symbol.

If You Cut a Piece of Graphite

The Periodic Table. LESSON 10 Breaking the Code. Think About It. Exploring the Topic. The Modern Periodic Table

The modern model of the atom has evolved over a long period of time through the work of many scientists.(3.1a) Each atom has a nucleus, with an

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

SNC1P - Chemistry Test Review

Name: Date: ChemT1. 1) Using the diagram above, answer the following question: What can be inferred from the diagram about the structure of the atom?

Chapter 2. Atoms, Molecules, and Ions. Copyright 2018 Cengage Learning. All Rights Reserved.

4. The mass of a proton is approximately equal to the mass of A an alpha particle C a positron. B a beta particle D a neutron

Periodic Table of Elements

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

Matter and Chemical Bonding Practice Test /75

Internal Structure of an Atom, Ions and Isotopes

Transcription:

Is Kr the symbol for Kryptonite?

Objectives 1. To learn about the relative abundances of the elements 2. To learn the names of some elements 3. To learn the symbols of some elements F is for Fluorine What will Beryllium Xe Be? Boron = B Carl Sagan - Everything

All of the materials in the universe can be chemically broken down into about 110 different elements. Compounds are made by combining atoms of the elements just as words are constructed from the letters in the alphabet but rules apply to govern the combinations. Words Compounds

A. Abundances of Elements Nine elements account for about 98% of the earth s crust, oceans and atmosphere. Crust

A. Abundances of Elements The elements in living matter are very different from those in the earth s crust In the human body, oxygen, carbon, hydrogen and nitrogen are the most abundant elements.

Element can have several scientific meanings Element Microscopic form Single atom of that element Element Macroscopic form Sample of that element large enough to weigh on a balance Element Generic form When we say the human body contains the element sodium or lithium, we do not mean that free elemental sodium or lithium is present. Rather we mean that atoms of these elements are present in some form.

B. Names and Symbols for the Elements Each element has a name and a symbol. The symbol usually consists of the first one or two letters of the element s name. Oxygen O Krypton Kr Sometimes the symbol is taken from the element s original Latin or Greek name. Examples: gold Au aurum lead Pb plumbum - Sometimes the first and another letter is used Zinc Zn Arsenic As In your notes write the symbol of the 10 most common elements of the Earth s crust and in the human body next to their names

Element Hangman Give the symbol for the following elements: Carbon Cobalt Cesium Calcium Copper Chlorine Cadmium Cerium

Objectives 1. To understand and illustrate the Law of Constant Composition 2. To learn about Dalton s theory of atoms 3. To learn how a formula describes a compound s composition Dalton Intro

1) Law of Constant Composition (1799 Joseph Louis Proust) A given compound always contains the same proportion by mass of the elements of which it is composed. ü A mixture can have variable composition but the composition of a compound is fixed ü Does this give us a clue about the nature of matter? H 2 O = H 2 O = H 2 O = H 2 O

2) Law of Multiple Proportions (1803 John Dalton) Different compounds formed by two elements have whole number ratios between their formulas

Dalton s Atomic Theory (John Dalton 1766-1844) Dalton s Atomic Theory states: All elements are composed of atoms All atoms of a given element are identical Atoms of different elements are different Compounds consist of combinations of atoms of different elements Atoms are not created or destroyed in a chemical reaction Dalton in Space You have 90 seconds to memorize these 5 parts of the theory!!

Brownian Motion Visual Evidence for Atoms Observed by Robert Brown 1773-1858 Pollen particles on the surface of water Brownian Motion Used in 1905 by Einstein to support the existence of atoms Electron Microscope

Formulas of Compounds A compound is represented by a chemical formula in which the number and kind of atoms present is shown by using the element symbols and subscripts. Example: the simple sugar, glucose

Put your notes away and write a set of rules for how to write a formula of a compound. Be as complete as you can be using what you have learned throughout your course

B. Formulas of Compounds 1. Each atom present is represented by its element symbol. 2. The number of each type of atom is indicated by a subscript written to the right of the element symbol. 3. When only one atom of a given type is present, the subscript 1 is not written. 4. Write a metallic element first if present (MgCl 2 ) 5. Write the central atom of a molecule first (PCl 5 ) 6. Write Carbon first and Hydrogen second for an organic molecule (C 6 H 12 O 6 )

Formulas of compounds Write the formulas for the following compounds: A phosphorus atom bonded to three chlorine atoms A molecule containing two boron atoms and six hydrogen atoms A compound containing one calcium atom for every two chlorine atoms Four hydrogen atoms bonded to a single carbon atom A compound containing two iron atoms for every three oxygen atoms A molecule of aspirin (acetylsalicylic acid four oxygen atoms, eight hydrogen, nine carbon atoms)

Aspirin, acetylsalicylic acid, C 9 H 8 O 4 Aspirin in Motion Element Hangman

Dalton described the atomic nature of matter is that the end of the story?

Objectives 1. To learn more about how the understanding of atomic structure developed 2. To learn about the internal parts of an atom 3. To understand Rutherford s experiment 4. To describe some important features of subatomic particles 5. To learn about the terms isotope, atomic number, and mass number 6. To understand the use of the symbol to describe a given atom

A. The Structure of the Atom Experiments by J.J. Thomson in the 1890 s showed that atoms contain electrons. Cathode ray tube The Discovery of the Electron Electric Potential = Voltage

A. The Structure of the Atom The Plum Pudding (Chocolate Chip Cookie) Model The Discovery of the Electron

A. The Structure of the Atom Rutherford s Experiment (1911) α particles are very small and positively charged

A. The Structure of the Atom Results of the Rutherford experiment (a) The results that the metal foil experiment would have yielded if the plum pudding model had been correct (b) Actual results

B. Introduction to the Modern Concept of Atomic Structure Ernest Rutherford showed that atoms have internal structure. The nucleus, which is at the center of the atom, contains protons (positively charged) and neutrons (uncharged). Negatively charged electrons move around the nucleus. The Discovery of the Atomic Nucleus

B. Introduction to the Modern Concept of Atomic Structure Comparing the Parts of an Atom

Large Hadron Collider Video New Scientist Video Circular tunnel 27km in circumference near Geneva Protons or lead nucleii smashed into targets $4 billion cost limited operation to date 2011 Restart

C. Atoms and Isotopes Atoms are made of protons neutrons and electrons Atoms of an element all have the same number of protons the number of protons defines the atom as being of that element In a neutral atom the number of electrons equals the number of protons plus charge is balanced out by minus charge However for a given element the number of neutrons can vary from atom to atom The different versions of atoms of an element are called isotopes Isotopes of an element all have the same chemical properties

C. Isotopes Isotopes are atoms with the same number of protons but different numbers of neutrons. Draw a similar picture for 15 N

C. Isotopes A particular isotope is represented by the symbol. The atomic number, Z, shows the number of protons The mass number, A, shows the number of protons plus neutrons e.g. Carbon: How many protons and neutrons in each of 12 C, 13 C and 14 C? D 2 O video

Isotopes True or False? Atoms that have the same number of neutrons but different numbers of protons are called isotopes True or False? The mass number of a nucleus represents the number of protons in the nucleus Are all atoms of the same element identical? If not, how do they differ? Is this consistent with Dalton s atomic theory? True or False? Isotopes of an element have different chemical properties True or False? All isotopes of an element are stable Dynamic Periodic Table

Isotope Math How Many Protons, Neutrons and Electrons in..? 64 28 Ni 48 22 Ti 35 Cl 11 B 106 Ag + 45 Ca 2+

More Isotope Math What is the symbol for the isotopes below? Z = 8, number of neutrons = 9 Isotope of chlorine with A = 37 Z = 27, A = 60 Number of protons = 26, number of neutrons = 31 The isotope of iodine with a mass number of 131 Z = 3, number of neutrons = 4 Z = 8, number of neutrons = 9, number of electrons = 10 WOC page 88 - Q30 Build An Atom

Objectives 1. To learn some features of the Periodic Table 2. To learn some of the properties of metals, nonmetals and metalloids 3. To learn the nature of the common elements

A. Introduction to the Periodic Table The periodic table shows all of the known elements in order of increasing atomic number.

A. Introduction to the Periodic Table The periodic table is organized to group elements with similar properties in vertical columns.

Introduction to the Periodic Table Give the Symbol and Name of 5 Elements from the following Groups Halogens Noble Gases Alkali Metals Transition Metals Alkaline Earths Lanthanides Actinides What is the Group number for Oxygen Magnesium Xenon

A. Introduction to the Periodic Table Most elements are metals and occur on the left side. The nonmetals appear on the right side. Metalloids are elements that have some metallic and some nonmetallic properties. Computer chips

A. Introduction to the Periodic Table Physical Properties of Metals 1. Efficient conduction of heat and electricity 2. Malleability (can be hammered into thin sheets) 3. Ductility (can be pulled into wires) 4. A lustrous (shiny) appearance

Tightest frying pan roll The tightest circumference of a 30 centimeter (12-inch) aluminium frying pan, rolled with bare hands in 30 seconds is 17.46 centimeters (6.87 inches), set by Scott Murphy at the NXB Team Training Center in Myrtle Beach, S.C., on July 30, 2007. Guinness Book of Records Frying Pan Roll

Elements in the Periodic Table What is the symbol, group number, group name and element classification for:- Sodium Iodine Argon Iron Barium Silicon Uranium Erbium Volatile History pt2 PT PT 1a from 3 minutes PT 1b early attempts PT 2a from 3 minutes PT 2b explanation of PT

B. Natural States of the Elements Most elements are very reactive. Elements are not generally found in nature in uncombined form. Exceptions are: Noble metals gold, platinum and silver Noble gases Group 8 but only as mixtures Oxygen and Nitrogen in air mixture Carbon as diamond

B. Natural States of the Elements Diatomic Molecules Nitrogen gas contains N 2 molecules. Oxygen gas contains O 2 molecules.

B. Natural States of the Elements Diatomic Molecules

HONClBrIF HONClBrIF HONClBrIF HONClBrIF

B. Natural States of the Elements Elemental Solids Can exist as Allotropes Carbon atoms Diamond Graphite Buckminsterfullerene Graphene

507-Carat Diamond Found at South African Mine Graphite Diamond Planet

Elements in the Periodic Table Give the element classification (metal, non-metal, metalloid) and natural state (solid, liquid, gas) (atom, molecule)? of: Potassium Chlorine Neon Tungsten Magnesium Germanium Iodine Mercury

Objectives 1. To describe the formation of ions from their parent atoms 2. To learn to name ions 3. To predict which ion a given element forms by using the periodic table 4. To describe how ions combine to form neutral compounds +/- e-

A. Ions In a chemical reaction atoms can form ions by gaining or losing electrons. Metals tend to lose one or more electrons to form positive ions called cations. Cations are generally named by using the name of the parent atom.

A. Ions Nonmetals tend to gain one or more electrons to form negative ions called anions. Anions are named by using the root of the atom name followed by the suffix ide.

A. Ions Ion Charges and the Periodic Table The ion that a particular atom will form can be predicted from the periodic table. Elements in Group 1 and 2 form 1+ and 2+ ions, respectively Group 7 atoms form anions with 1- charges Group 6 atoms form anions with 2- charges Elements close to the sides of the Periodic Table gain or lose electrons to reach a noble gas configuration

A. Ions Ion Charges and the Periodic Table

Ions What ions would be formed from the elements with the following atomic numbers? Also what noble gas has the same number of electrons as these ions? 53 38 7 55 88 9 13

B. Compounds That Contain Ions Ions are produced in chemical reactions Ions combine to form ionic compounds - Positive ions are attracted to negative ions Formation of NaCl Properties of ionic compounds Solid, crystalline - High melting points (NaCl 801oC)

B. Compounds That Contain Ions Properties of Ionic Compounds (2) Can conduct electricity If melted If dissolved in water

B. Compounds That Contain Ions Ionic compounds are electrically neutral. The pluses are balanced by the minuses The charges on all the anions and cations in the compound must sum to zero / be in balance. Remember This

B. Compounds That Contain Ions Formulas for Ionic compounds Write the cation element symbol followed by the anion element symbol. The number of cations and anions must be correct for their charges to sum to zero.

Ionic Compounds What compound would be formed by the following ions? Na+ and Cl- K+ and F- Fe3+ and P3- Na+ and S2- Mg2+ and Cl- Mg2+ and O2- Fe3+ and Cl- Na+ and P3- Al3+ and S2- Mg2+ and N3- What would be the symbol of the ion formed by the Nitrogen-15 isotope?