Isotopic Abundance Pages 23-27. Thinking question Why are there decimal places for atomic masses on the periodic table if protons and neutrons have amu.

Slides:



Advertisements
Similar presentations
Isotope Notation Isotope Notation uses a symbol to convey information about an isotope of a particular element. 23 Na 11.
Advertisements

4.3: HOW ATOMS DIFFER ATOMIC NUMBER
Average Atomic Mass. How much does an atom weigh?  Protons & Neutrons:  1.67 X gram  Electrons:  9.10 X gram  To avoid working with.
Average Atomic Mass Practice
AIM: HOW TO CALCULATE THE AVERAGE ATOMIC MASS? DO NOW:1. WHAT ARE THE 3 SUBATOMIC PARTICLES OF AN ATOM? LIST THE THREE SUBATOMIC PARTICLES AND THEIR CHARGE.
Chapter 11B Notes Determining Isotope Masses. Intro What is the mass of an atom with 6 protons and 6 neutrons? 12 What is the mass of an atom with 6 protons.
ATOMIC MASS & ISOTOPES Atomic mass is a relative scale Similar to comparing the distances between Cincinnati to Columbus and Cincinnati to Toledo It is.
Average Atomic Mass.  An element can exist in a number of forms, called isotopes. Isotopes are forms of the same atom that vary in mass as a result of.
Components of the Atom Nucleus: Nuclear Forces:
 Each element on the periodic table has an isotope.  What make an element have different isotopes?  There are 2 different isotopes of iron  Find the.
Average Atomic Mass. Average Atomic Mass – the weighted average of the masses of the isotopes of an element Every element is composed of several naturally.
Ch. 3 - Atomic Structure II. Masses of Atoms (p.75-80) Mass Number
Atomic Mass. Isotopes Reminder Yesterday we learned that the mass of all atoms of a certain element are not always the same –Some atoms may have more.
Isotopes Atoms of the same element that different mass numbers
Ions An atom that carries an electrical charge is called an ion If the atom loses electrons, the atom becomes positively charged (because the number of.
Number of Protons = Number of Electrons Number of Protons = Atomic Number Atomic Mass = Protons + Neutrons.
Average Atomic Mass.
More about isotopes Atomic mass vs average atomic mass or atomic weight.
& Average Atomic Mass  Atoms with the same number of protons (they are the same element) but different number of neutrons.
Unit 3: Atomic Structure Atomic Mass Units (amu) and Calculating Atomic Mass.
 Atomic Number- the number of protons in the nucleus of an atom of that element  Ex: Hydrogen atoms have only one proton in the nucleus, so the atomic.
Chapter 4 Section 4.  There are about 118 known types of atoms.  Each element has it’s own type of atom.  All atoms of an element have to have one.
Using Isotope Data to Find a Weighted Average.  Each isotope will have two values associated with it.  Mass of Isotope  Percent Abundance (% found.
Calculating the Average Atomic Mass. Steps for Calculating Average Atomic Mass (When given percentages of each isotope and each isotopes mass) 1. Convert.
Ch. 3 - Atomic Structure II. Masses of Atoms (p.75-80)  Mass Number  Isotopes  Relative Atomic Mass  Average Atomic Mass.
…AND THE AVERAGE ATOMIC MASS Isotopes. PG 88 GENERAL- ATOMS OF THE SAME ELEMENT BUT HAVE DIFFERENT AMOUNTS OF NEUTRONS IN THE NUCLEUS PAGE 54 PRE AP ATOMS.
TAKE A …. GUIDED NOTES PAGE ATOMIC MASS W.S. ….OFF MY DESK.
Atomic Mass. Masses in amu Only carbon-12 has an atomic mass exactly equal to its mass # One atomic mass unit (amu) is defined as 1/12 the mass of a carbon-12.
Isotopic Abundance SCH 3U. Atomic Mass The mass of an atom (protons, neutrons, electrons) Relative Atomic Mass: An element’s atomic mass relative to the.
Average atomic Mass. What does the atomic mass tell us on the Periodic table?
Average Atomic Mass. Relative Atomic Masses  Masses of atoms (in grams) are very small, so for convenience we use relative masses.  Carbon-12 is our.
Atomic Number & Atomic Mass
Average Atomic Mass.   atomic masses reported in periodic table represent: weighted average of masses of all naturally occurring isotopes of an element.
Isotopes. The Nucleus  The number of protons in the nucleus of an atom is unique to each type of element  BUT, the nuclei of the same type of element.
Average Atomic Mass What is average atomic mass? Average atomic mass is the weighted average of the atomic masses of the naturally occurring isotopes of.
Isotopes. Let’s Review ProtonsNeutronsElectrons Charge +1 0 Mass 1 amu 0 Location nucleus Electron cloud.
Isotopes and Mass Number. Isotope Atoms of the same element with: Same number of protons BUT Different number of neutrons ELEMENT IS TO ISOTOPE AS DOG.
Chapter 4 AVERAGE ATOMIC MASS. Atomic Mass… n The weighted average of the masses of all the naturally occurring isotopes of that element. n Is not a whole.
Protons, Neutrons, and Electrons
Distinguishing among Atoms
Average atomic mass of lithium isotopeabundanceatomic mass Li-67.49% amu Li % amu.
WEIGHTED AVERAGE MASS NUMBER: 1)The mass number on the periodic table is calculated from the weighted average of the most abundant isotopes. 2) Abundance.
Average Atomic Mass ► Average Atomic Mass – the weighted average of the masses of the isotopes of an element ► Every element is composed of several naturally.
This is the solution for carbon: (12) (0.9890) + (13) (0.0110) = amu mass number percent abundance % % Recall!!! carbon:
Average Atomic Mass!!!. Copper is made of two isotopes. Copper- 63 is 69.17% abundant and it has a mass of amu. Copper-65 is 30.83% abundant and.
Essential Question: How do atoms of the same element differ?
1 The Atom Atomic Number and Mass Number Isotopes.
Atomic Mass Mrs. Cook. Atomic Mass - The average relative mass of all naturally occurring isotopes of an element. relative mass – The mass of one object.
Average Atomic Mass Practice
Same Element Different Atom- Isotopes All atoms of a particular element are not exactly alike. Some elements have atoms with different masses (isotopes)
Lesson 24: Isotopes An element can be identified by the # of protons it has # of neutrons can vary Neutrons add to the mass of the atom, but do not change.
Daily Science Who discovered the electron and how did he discover it? What was his model called? What tells you the number of p + an element has? Write.
Calculating Atomic Mass
II. Masses of Atoms Mass Number
Calculating Average Atomic Mass
Calculating Average Mass
Average atomic Mass.
Estimating the Mass Number:
Isotopes 436 Objectives: 5.2 Identify the advantages and disadvantages of using isotopes in industry, medical science, basic research, and in the environment.
Ch Atomic Structure II. Masses of Atoms (p.30-31) Mass Number
Lesson 13: Subatomic Heavyweights
Average Atomic Mass.
Structure of an Atom.
Isotopes Atoms with SAME number of PROTONS (atomic number) but DIFFERENT numbers of neutrons (i.e. mass number) 6 protons 6 neutrons 6 protons 7 neutrons.
Average Atomic Mass.
Calculating Average Atomic Mass
Atomic Math Calculations
Ch. 4 - Atomic Structure II. Masses of Atoms Ch.4 Mass Number Isotopes
Find the average of the following numbers…
Average Atomic Mass.
Presentation transcript:

Isotopic Abundance Pages 23-27

Thinking question Why are there decimal places for atomic masses on the periodic table if protons and neutrons have amu values of 1?

Isotopic Abundance Elements have multiple isotopes which exist in different percentages. For example: 1.3 % isotope one 18.7% isotope two 80.0% isotope three The values on the periodic table represent the “average” mass

Isotopic Abundance Atomic masses are a “weighted average” of the isotopes Weighted average ◦ ◦

Isotopic Abundance Questions Two main types: 1. Find the “average” mass given the percentages. 2. Find the percentages given the “average” mass.

Question #1 Given: mass of 7 Li = u mass of 6 Li = u Of all existing Li atoms, 92.58% are 7 Li, while the remaining is 6 Li. What is the “average” mass of an Li atom?

Question #2 In nature, silicon is composed of three isotopes. Calculate the average atomic mass of silicon given: 28 Si (92.23%, u) 29 Si (4.67%, u) 30 Si (3.10%, u)

Question #3 Given: mass of 10 B = u mass of 11 B = u If the “average” mass of a B atom is u, what is the percent abundance of each of the isotopes given?

Homework Pg. 27, #1 Pg. 29 #7,9