ISOTOPIC NOTATION isotopes are atoms with the same number of protons but different number of neutrons A Z X A = mass number (the total number of protons.

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

ISOTOPIC NOTATION isotopes are atoms with the same number of protons but different number of neutrons A Z X A = mass number (the total number of protons.
4.3: HOW ATOMS DIFFER ATOMIC NUMBER
Isotopes. Subatomic Particles # protons = atomic number Carbon - atomic number 6; # of protons 6 # electrons (neutral atom) = # protons Carbon - # protons.
ISOTOPIC NOTATION isotopes are atoms with the same number of protons but different number of neutrons A Z X A = mass number (the total number of protons.
OF PROTONS, NEUTRONS AND ELECTRONS IN AN ATOM
Relative atomic mass Atoms are too small to be weighed individually, even with the best balance! We can, however, compare the masses of different atoms.
Isotopic Notation Chemistry 11. Definition of an Isotope Isotopes are atoms with the same number of protons but different number of neutrons Isotopes.
Early Atomic Theory and Structure. Chapter 5—Early Theories o What is stuff made of? o What makes something move? o How do we know it’s alive? o Is there.
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.
Isotopes and Mass Number. Atomic Number The number of protons in each atom identifies it as an atom of a particular element Each atom has a unique number.
Wake-up 1.Explain the relationship between the following: atomic number, mass number, protons, neutrons, and electrons. 2.How do you find the number of.
Counting Atoms.
Isotopes Atoms of the same element that different mass numbers
Early Atomic Theory and Structure. Chapter 5—Early Theories o What is stuff made of? o What makes something move? o How do we know it’s alive? o Is there.
Homework from page 104.
How Atoms Differ.
Atomic Number, Mass Number, Atomic Mass and Isotopes
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.
Chapter 3 Atoms and Elements 3.5 Atomic Number and Mass Number 1.
THE ATOM Counting. The Atom  Objectives Explain what isotopes are Define atomic number and mass number, and describe how they apply to isotopes Given.
+ ISOTOPIC NOTATION isotopes are atoms with the same number of protons but different number of neutrons.
Isotopes  Atoms with the same number of protons but different numbers of neutrons  Ex) Carbon 12 vs. Carbon 14  These atoms have a different 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.
 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.
Wake-up Explain the relationship between the following: atomic number, mass number, protons, neutrons, and electrons. How do you find the number of electrons.
Section 4.3 How atoms differ. Atomic Number Represents three things in a neutral atom: 1. What element it is 2. The number of protons in each atom 3.
 The weighted average of its naturally occurring isotopes. Chemical Name Atomic # Chemical Symbol Atomic Mass (Average Atomic Mass)
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.
Atoms / Elements Different number of protons Protons found in nucleus # of protons = atomic number Since atom is electrically neutral: #protons = # electrons.
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.
Isotopes. Let’s Review ProtonsNeutronsElectrons Charge +1 0 Mass 1 amu 0 Location nucleus Electron cloud.
1Chemistry Chapter 4: How Atoms Differ: Atomic number = # p + AND e - (assume neutral atom for charge). Atomic number = # p + AND e - (assume neutral atom.
Atomic Number & Mass Number All atoms consist of protons and electrons- most also have neutrons Protons & neutrons- in the small dense nucleus- similar.
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.
Distinguishing Among Atoms. Objectives Define isotope and nuclide Use atomic number, mass number, and charge to determine the number of protons, neutrons,
4.3 Atomic #, Mass #, Atomic Mass & Isotopes. Atomic Number  What are the 3 subatomic particles?  Which of the subatomic particles identifies an element?
Isotopes are atoms of the same element that have a different number of neutrons For example, Hydrogen has 3 isotopes: Protium (0 neutrons) Deuterium (1.
Isotopes. Atomic Number Atomic number = number of protons – Which makes it always a whole number Atomic number is always the same for a given element.
Warm-Up -Write the correct Nuclide Symbol for the following elements: *19 p+, 20 n *82 e-, 125n *Mass # 238, neutrons= 146.
Unit 2: Symbols Say WHAT?.
SNC1D Isotopes.
Atomic Structure Current Atomic model
How Atoms Differ.
Calculating Atomic Mass
Average Atomic Mass In nature, most elements are a mixture of different isotopes The mass of a sample of an element is a weighted average of all the isotopes.
Calculating Average Mass
Warm Up Monday 1/25/16 1. What are atoms?
4.2 – NOTES The Mass of the Atom
66. How many protons and electrons are contained in an atom of element 44? element 44 = atomic # protons 44 electrons.
Atomic Structure.
Unit 2: Atomic Theory & Structure
Subatomic Particles.
Standard Atomic Weights on Periodic Table (red numbers) are found through the terrestrial (Sol III) relative abundances of the masses (in amu) of the isotopes.
Atomic Variation.
Section 3 Counting Atoms
Subatomic Particles.
Section 3 Counting Atoms
Average Atomic Mass If there are 2 naturally occurring isotopes of
Standard Atomic Weights on Periodic Table (red numbers) are found through the terrestrial (Sol III) relative abundances of the masses (in amu) of the isotopes.
Element properties & isotopes
Atomic Symbols = = mass # atomic # protons + neutrons protons
Atomic Structure Protons- positively charged, found in nucleus
Calculating Average Atomic Mass
Atomic Number, Mass Number, Atomic Mass and Isotopes
Atomic Math Calculations
Structure of the Nucleus
Atoms.
Subatomic Particles.
Presentation transcript:

ISOTOPIC NOTATION isotopes are atoms with the same number of protons but different number of neutrons A Z X A = mass number (the total number of protons + neutrons) Z = atomic number (the total number of protons) X = element symbol

READING ISOTOPIC NOTATION 46 21 Sc 46 = mass number (the total number of protons (21) + neutrons (25) 21 = atomic number (the total number of protons (21)) Sc = element symbol In a neutral atom, the number of electrons (21) is equal to the number of protons.

PRACTICE PROBLEMS 15N 35P 62Cu2+ 76Se3- 7 8 7 15 20 15 27 29 33 42 34 # protons = ____ # neutrons= ____ #electrons = ___ 35P # p = ____ # n= ____ #e- = ___ 62Cu2+ 76Se3- # p = ____ # n= ____ #e- = ___ 7 8 7 15 20 15 27 29 33 42 34 37

Writing ISOTOPIC NOTATION Write the symbol for the atom with an atomic number of 21 and a mass number of 48. Give the complete chemical notation for the nuclide with 23 protons, 26 neutrons and 20 electrons. Write the isotopic notation for Z = 46 A = 110 An atom containing 24 protons, 28 neutrons, and 21 electrons Titanium-50 48 Sc 49V3+ 110Pd 52Cr3+ 50Ti

PRACTICE PROBLEMS 196 Pt4+ # p = _____ # n = _____ #e- = _____ mass number = ________ atomic number = _______ atomic mass = ________ name of element = _______ 2. Indicate the appropriate atomic mass of an element with 30 protons, 30 neutrons, and 28 electrons. 74 118 78 78 196 195.1 amu platinum 65.39 amu

Atomic Mass The atomic mass of an element represents the average mass of all the isotopes found in nature. No element exists with only one possible isotope. Hydrogen has the smallest number of isotopes: 1H protium, 2H deuterium, 3H tritium. Its atomic mass is 1.0079 amu (atomic mass units). The atomic mass is calculated by adding the % of 1H mass found in nature to the % of 2H mass found in nature plus the % of 3H mass. % 1H + % 2H + % 3H = average mass (atomic mass) Generally the formula used is: % X + % Y + % Z… = atomic mass. An instrument called the mass spectrometer is generally used to determine the percentages and individual masses of each isotope.

Now look at the periodic table to verify the answer. Atomic Mass Silver is found to have two stable isotopes, one has an atomic mass of 106.904 amu and the other weighs 108.905 amu. The first isotope represents 51.82 % of the mass of the element and the second represents 48.18 %. What is the atomic mass of the element silver? The equation to use is %X + % Y = average And remember to turn your percents into fractions before multiplying. (0.5182) 106.904 amu + (0.4818) 108.905 amu =? 55.398 amu + 52.470 amu =? 107.868 amu !! Now look at the periodic table to verify the answer.

PRACTICE PROBLEMS # 8 1. A sample of neon contains three isotopes, neon-20 (with an isotopic mass of 19.9924 amu), neon-21 (20.9939 amu) and neon-22 (21.9914 amu). The natural abundances of these isotopes are 90.92%, 0.257 %, and 8.82 %. Calculate the atomic weight of neon. 2. There are only two naturally occuring isotopes of copper, 63Cu and 65Cu. Copper has an atomic mass of 63.55 amu. What is the natural abundance of each isotope? 3. There are only two naturally occuring isotopes of gallium, 69Ga and 71Ga. What is the natural abundance of each isotope? 20.17 amu 65Cu = 30% & 63Cu = 70% 69Ga = 60% and 71Ga = 40%

GROUP STUDY PROBLEM #8 _______1. The element with atomic number 53 contains a) 53 neutrons b) 53 protons C) 26 neutrons & 27 protons d) 26 protons & 27 neutrons _______2. The mass of one atom of an isotope is 9.746 x 10-23 g. One atomic mass unit has the mass of 1.6606 x 10-24 g. The atomic mass of this isotope is a) 5.870 amu b) 16.18 amu c) 58.69 amu d) 1.627 amu 108 _______3. The number of neutrons in an atom of 47 Ag is a) 47 b) 108 c) 155 d) 61 27 _______4. The number of electrons in an ion of 13 Al3+ is a) 13 b) 10 c) 27 d) 14 _______5. What is the relative atomic mass of boron if two stable isotopes of boron have the following mass and abundance: 10.0129 amu (19.91%) & 11.0129 (80.09%) a) 10.81 amu b) 10.21 amu c) 10.62 amu d) 10.51 amu