Electromagnetic Spectrum Section 1 The Development of a New Atomic Model Chapter 4.

Slides:



Advertisements
Similar presentations
Chemistry Daily 10’s Week 5.
Advertisements

The Modern Atomic Model After Thomson: Bohr, Placnk, Einstein, Heisenberg, and Schrödinger.
Chapter 4.
The Arrangement of Electrons in Atoms
Section 2: Quantum Theory and the Atom
Emission and Absorption of Electromagnetic Energy
Electrons And Light. Electromagnetic Radiation Energy that travels as a wave through space Wavelength –λ – distance between corresponding points on adjacent.
Arrangement of Electrons in Atoms Part One Learning Objectives Read Pages Asgn #16: 103/1-6 1.
Quantum Model of the Atom l Bohr l de Broglie l Heisenberg l Schrödinger.
Lecture 2210/26/05. Moving between energy levels.
Quantum Mechanical Model
Niels Bohr’s Energy Levels
Which scientist studied glowing metals and discovered that only certain wavelengths of light are emitted at each specific temperature & represented a.
Introduction to Excited Elements Lab
Chapter 4 Arrangement of Electrons in Atoms
The Quantum Model of the Atom Part 1 Electrons as Waves.
Chapter 4 Arrangement of Electrons in Atoms
Chapter 4 Notes for those students who missed Tuesday notes.
-The Bohr Model -The Quantum Mechanical Model Chemistry.
Copyright © by Holt, Rinehart and Winston. All rights reserved. ResourcesChapter menu Section 1 The Development of a New Atomic Model Properties of Light.
Quantum Chemistry Chapter 6. Copyright © Houghton Mifflin Company. All rights reserved.6 | 2 Electromagnetic Radiation.
 Unit 4 The Arrangement of Electrons Ch. 4. Exam 4 Analysis  Averages  The Atom+/25(%)  Measurement+/15(%) up from %  Phases/KMT+/10(82%) down from.
Modern Chemistry Chapter 4 Arrangement of Electrons in Atoms
Leading up to the Quantum Theory.  exhibits wavelike behavior  moves at a speed 3.8 × 10 8 m/s in a vacuum  there are measureable properties of light.
Electrons in Atoms Chapter 5. Duality of Light Einstein proved that matter and energy are related E = mc 2 Einstein proved that matter and energy are.
Chapter 4 Electrons. ELECTRON BEHAVIOR Who made this model of the atom?
Mullis1 Arrangement of Electrons in Atoms Principles of electromagnetic radiation led to Bohr’s model of the atom. Electron location is described using.
-The Bohr Model -The Quantum Mechanical Model Mrs. Coyle Chemistry.
Development of Atomic Models
Section 2: Quantum Theory and the Atom
Quantum Theory and the Atom
Quantum Theory and the Electronic Structure of Atoms Chapter 7 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
Electrons in Atoms 13.3 Physics and the Quantum Mechanical Model
Bohr vs the quantum mechanical model of the atom
Electrons in Atoms The Development of a New Atomic Model.
Explain why different colors of light result
River Dell Regional High School Unit 3 – Electron Configurations Part C: Quantum Mechanical Model.
Quantum Theory and the Electronic Structure of Atoms Chapter 7 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
Chapter 4: Electron Configurations Development of New Atomic Model.
Line Emission Spectrum If this light is separated with a prism, it separates into a series of specific frequencies of light. This series of frequencies.
Section 4-1 Continued.  Ground State – the lowest energy state of an atom  Excited State – a state in which an atom has a higher energy than in its.
Enriched Chemistry Chapter 4 – Arrangement of Electrons in Atoms
Section 1 The Development of a New Atomic Model Properties of Light The Wave Description of Light Electromagnetic radiation is a form of energy that exhibits.
Copyright © by Holt, Rinehart and Winston. All rights reserved. ResourcesChapter menu Table of Contents Chapter 4 Arrangement of Electrons in Atoms Section.
Light: Wave or Particle Chapter 4, Section 1 notes.
Chapter 5 Review. Wave Nature of Light Wavelength- Wavelength- The distance between two consecutive peaks or troughs. Frequency- Frequency- The number.
Electrons in Atoms Chapter Wave Nature of Light  Electromagnetic Radiation is a form of energy that exhibits wavelike behavior as it travels through.
Models of the Atom Chapter 4 Chm and
EMR exhibits particle (photon) and wave (ν, λ, Amp) properties and all energy is transferred in quantum. Elements have unique emission spectra because.
Quantum Theory Schroedinger’s Cat Place a cat in a box Also place a radioactive isotope and a vial of poison The isotope decays once per hour If the particle.
Chemistry I Chapter 4 Arrangement of Electrons. Electromagnetic Radiation Energy that exhibits wavelike behavior and travels through space Moves at the.
Modern Model of the Atom The emission of light is fundamentally related to the behavior of electrons.
Chapter 11 Modern Atomic Theory. Rutherford’s Atom What are the electrons doing? How are the electrons arranged How do they move?
Section 1 The Development of a New Atomic Model Objectives Explain the mathematical relationship among the speed, wavelength, and frequency of electromagnetic.
Light Light is a kind of electromagnetic radiation, which is a from of energy that exhibits wavelike behavior as it travels through space. Other forms.
CHAPTER 4 CHEMISTRY. PROPERTIES OF LIGHT (P91-93) Originally thought to be a wave It is one type of ELECTROMAGNETIC RADIATION (exhibits wavelike behavior.
Preview Objectives Properties of Light Wavelength and Frequency The Photoelectric Effect The Hydrogen-Atom Line-Emission Spectrum Bohr Model of the Hydrogen.
Electrons And Light. Electromagnetic Radiation Energy that travels as a wave through space Wavelength –λ – distance between corresponding points on adjacent.
Planetary Model At first, Bohr thought the atom was much like the sun (nucleus) with the planets (e-) orbiting around it.
-The Bohr Model -The Quantum Mechanical Model
Quantums numbers & the probability of where an electron may be found
Chapter 5: Electron Configurations
the quantum model of the atom
Physics and the Quantum Mechanical Model
Chapter 4 The Wave Description of Light
Matter is a Wave Does not apply to large objects
ELECTRONS IN ATOMS.
Bohr, Emissions, and Spectra
Chemistry “Electrons in Atoms”
The Bohr Model, Wave Model, and Quantum Model
Presentation transcript:

Electromagnetic Spectrum Section 1 The Development of a New Atomic Model Chapter 4

Wavelength and Frequency Section 1 The Development of a New Atomic Model Chapter 4

Light as a wave Wavelength and frequency related by: c = λv

Photoelectric Effect Section 1 The Development of a New Atomic Model Chapter 4

Light as a particle Photon Packet of energy E = hv Can be absorbed and emitted by atoms Light has dual wave/particle nature

Hydrogen’s Line-Emission Spectrum Section 1 The Development of a New Atomic Model Chapter 4

Bohr model of hydrogen atom

Bohr Model of Atom Explained hydrogen’s line emission spectrum – bands of light emitted by an atom e - can only exist at fixed energy levels Absorption – e - absorbs a photon and jumps to a higher energy level Emission – e - falls to a lower energy level and emits a photon Ground state – all e - in lowest possible energy levels Excited state – at least one e - has absorbed a photon and jumped to a higher energy level

Photon Emission and Absorption Section 1 The Development of a New Atomic Model Chapter 4

Determining energy between levels Measure the wavelength of light emitted Calculate frequency using c = λv Calculate energy using E = hv

Bohr model of hydrogen atom

Limitations of Bohr Model

Explained the line emission spectrum of H

Limitations of Bohr Model Explained the line emission spectrum of H Did not explain

Limitations of Bohr Model Explained the line emission spectrum of H Did not explain –Line emission spectrum of other atoms

Limitations of Bohr Model Explained the line emission spectrum of H Did not explain –Line emission spectrum of other atoms –Chemical behavior of atoms

Limitations of Bohr Model Explained the line emission spectrum of H Did not explain –Line emission spectrum of other atoms –Chemical behavior of atoms –Why only certain energy levels existed

De Broglie’s Hypothesis

Electrons can act as waves

De Broglie’s Hypothesis Electrons can act as waves –confined to space around nucleus

De Broglie’s Hypothesis Electrons can act as waves –confined to space around nucleus –set up 3D standing waves around nucleus

De Broglie’s Hypothesis Electrons can act as waves –confined to space around nucleus –set up 3D standing waves around nucleus –Only specific frequencies are allowed

De Broglie’s Hypothesis Electrons can act as waves –confined to space around nucleus –set up 3D standing waves around nucleus –Only specific frequencies are allowed –And, hence, only certain energy levels

Heisenberg Uncertainty Principle Impossible to know both the position and velocity of an electron at the same time. Electrons do not follow fixed paths. Can only identify a region where an electron might exist.

Schrodinger’s Wave Equation

Describes what those regions look like. –called orbitals

Schrodinger’s Wave Equation Describes what those regions look like. –called orbitals. Solution to equation: 3 quantum numbers

Schrodinger’s Wave Equation Describes what those regions look like. –called orbitals. Solution to equation: 3 quantum numbers 1.Main energy level

Schrodinger’s Wave Equation Describes what those regions look like. –called orbitals. Solution to equation: 3 quantum numbers 1.Main energy level 2.Shape of orbital

Schrodinger’s Wave Equation Describes what those regions look like. –called orbitals. Solution to equation: 3 quantum numbers 1.Main energy level 2.Shape of orbital 3.Orientation of orbital

Schrodinger’s Wave Equation Describes what those regions look like. –called orbitals. Solution to equation: 3 quantum numbers 1.Main energy level 2.Shape of orbital 3.Orientation of orbital Quantum numbers give the address of electrons in the atom.

Quantum model of atom

Energy levels in the atom are like an upside down pyramid building.

Relative Energies of Orbitals Chapter 4