Physical Electronics. First class (1)

Similar documents
Ch 7 Quantum Theory of the Atom (light and atomic structure)

Quantum Theory of the Atom

The Photoelectric Effect

Mystery #3 Emission Spectra of Elements. Tube filled with elemental gas. Voltage can be applied across both ends, this causes the gas to emit light

Preview. Atomic Physics Section 1. Section 1 Quantization of Energy. Section 2 Models of the Atom. Section 3 Quantum Mechanics

Quantum Theory of the Atom

UNIT 4 Electrons in Atoms. Advanced Chemistry 235 Lanphier High School Mr. David Peeler

Chapter 6 Electronic structure of atoms

2) The energy of a photon of light is proportional to its frequency and proportional to its wavelength.

Chapter 6. Electronic Structure of Atoms

Part One: Light Waves, Photons, and Bohr Theory. 2. Beyond that, nothing was known of arrangement of the electrons.

Electronic structure of atoms

SCH4U: History of the Quantum Theory

An electron can be liberated from a surface due to particle collisions an electron and a photon.

Chapter 7 Atomic Structure -1 Quantum Model of Atom. Dr. Sapna Gupta

Chapter 6 - Electronic Structure of Atoms

--THE QUANTUM MECHANICAL MODEL

Line spectrum (contd.) Bohr s Planetary Atom

Atomic Structure and the Periodic Table

The Electron Cloud. Here is what we know about the electron cloud:

Accounts for certain objects being colored. Used in medicine (examples?) Allows us to learn about structure of the atom

Chapter 7. The Quantum Mechanical Model of the Atom

Energy levels and atomic structures lectures chapter one

Chapter 8: Electrons in Atoms Electromagnetic Radiation

Chapter 7. The Quantum- Mechanical Model of the Atom. Chapter 7 Lecture Lecture Presentation. Sherril Soman Grand Valley State University

General Chemistry by Ebbing and Gammon, 8th Edition

Chapter 6: Electronic Structure of Atoms

Particle nature of light & Quantization

The Wave Nature of Light Made up of. Waves of fields at right angles to each other. Wavelength = Frequency =, measured in

Outline Chapter 9 The Atom Photons Photons The Photoelectron Effect Photons Photons

CHEMISTRY Matter and Change

CHAPTER 28 Quantum Mechanics of Atoms Units

Chapter 6. Electronic Structure of Atoms. Lecture Presentation. John D. Bookstaver St. Charles Community College Cottleville, MO

Electronic Structure. of Atoms. 2009, Prentice-Hall, Inc. Electronic Structure. of Atoms. 2009, Prentice-Hall, Inc. Electronic Structure.

Chapter 27 Early Quantum Theory and Models of the Atom Discovery and Properties of the electron

COLLEGE PHYSICS. Chapter 30 ATOMIC PHYSICS

PHYSICS 3204 PUBLIC EXAM QUESTIONS (Quantum pt.1)

DEVIL PHYSICS THE BADDEST CLASS ON CAMPUS IB PHYSICS

Chapter 6: The Electronic Structure of the Atom Electromagnetic Spectrum. All EM radiation travels at the speed of light, c = 3 x 10 8 m/s

Chapter 7 QUANTUM THEORY & ATOMIC STRUCTURE Brooks/Cole - Thomson

Chapter 4. Table of Contents. Section 1 The Development of a New Atomic Model. Section 2 The Quantum Model of the Atom

Chapter 4 Arrangement of Electrons in Atoms. 4.1 The Development of a New Atomic Model

Light. October 16, Chapter 5: Electrons in Atoms Honors Chemistry. Bohr Model

Models of the Atom. Spencer Clelland & Katelyn Mason

Atomic Structure. Standing Waves x10 8 m/s. (or Hz or 1/s) λ Node

Electromagnetic Radiation All electromagnetic radiation travels at the same velocity: the speed of light (c), m/s.

Lecture 11 Atomic Structure

We also find the development of famous Schrodinger equation to describe the quantization of energy levels of atoms.

Electronic Structure of Atoms. Chapter 6

The Nature of Energy

Explain the mathematical relationship among the speed, wavelength, and frequency of electromagnetic radiation.

Calendar. October 23, Chapter 5 Notes Waves.notebook Waves vocab waves ws. quiz PSAT. Blank. elements test. demo day

Early Quantum Theory & Models of the Atom (Ch 27) Discovery of electron. Blackbody Radiation. Blackbody Radiation. J. J. Thomson ( )

Yellow. Strontium red white. green. yellow violet. green. red. Chapter 4. Arrangement of Electrons in Atoms. Table of Contents

Democritus and Leucippus Matter is made up of indivisible particles Dalton - one type of atom for each element. Greek Idea

CHEMISTRY Topic #1: Atomic Structure and Nuclear Chemistry Fall 2017 Dr. Susan Findlay See Exercises 3.1 to 3.3

Physics 1C. Modern Physics Lecture

Chapter 39. Particles Behaving as Waves

THE NATURE OF THE ATOM. alpha particle source

Atomic Structure 11/21/2011

Chapter 6. of Atoms. Chemistry, The Central Science, 10th edition Theodore L. Brown; H. Eugene LeMay, Jr.; and Bruce E. Bursten

Electron Arrangement - Part 1

Chapter 6. of Atoms. Waves. Waves 1/15/2013

WAVE NATURE OF LIGHT

Planck s Quantum Hypothesis Blackbody Radiation

The Bohr Model of Hydrogen, a Summary, Review

Quantum and Atomic Physics - Multiple Choice

Chapter 7. Atomic Structure

Electrons in Atoms. Section 5.1 Light and Quantized Energy Section 5.2 Quantum Theory and the Atom Section 5.3 Electron Configuration

Atoms, Electrons and Light MS. MOORE CHEMISTRY

Historical Background of Quantum Mechanics

Chapter 7: The Quantum-Mechanical Model of the Atom

Periodicity and the Electronic Structure of Atoms 國防醫學院生化學科王明芳老師

CHAPTER 4. Arrangement of Electrons in Atoms

Ch 6 Atomic Spectra. Masterson & Hurley

Electrons! Chapter 5

Wave Nature of Matter. Wave Nature of Matter. Wave Nature of Matter. Light has wave-like and particle-like properties

CHAPTER 27 Quantum Physics

Bohr s Correspondence Principle

A more comprehensive theory was needed. 1925, Schrödinger and Heisenberg separately worked out a new theory Quantum Mechanics.

Atomic Structure and Periodicity. AP Chemistry Ms. Grobsky

Electrons in Atoms. Section 5.1 Light and Quantized Energy

Heat of formation / enthalpy of formation!

Physics 1C Lecture 29B

Chapter 7. Wave Behavior of Electrons

Lecture 6 - Atomic Structure. Chem 103, Section F0F Unit II - Quantum Theory and Atomic Structure Lecture 6. Lecture 6 - Introduction

Development of the Periodic Table. Chapter 5. Light and the EM Spectrum. Light

LIGHT AND THE QUANTUM MODEL

Chapter 11. What subatomic particles do you get to play with? Protons Neutrons Eletrons

Heat of formation / enthalpy of formation! What is the enthalpy change at standard conditions when 25.0 grams of hydrogen sulfide gas is reacted?

Chapter 37 Early Quantum Theory and Models of the Atom. Copyright 2009 Pearson Education, Inc.

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

AP Chapter 6 Study Questions

Chapter 6 Electronic Structure of Atoms. 許富銀 ( Hsu Fu-Yin)

Modern Physics for Scientists and Engineers International Edition, 4th Edition

The Atom & Unanswered Questions:

Ch. 7 The Quantum Mechanical Atom. Brady & Senese, 5th Ed.

Chapter 6 Electronic Structure of Atoms

QUANTUM THEORY & ATOMIC STRUCTURE. GENERAL CHEMISTRY by Dr. Istadi

Chapter 9. Blimps, Balloons, and Models for the Atom. Electrons in Atoms and the Periodic Table. Hindenburg. Properties of Elements Hydrogen Atoms

Transcription:

Physical Electronics First class (1)

Bohr s Model Why don t the electrons fall into the nucleus? Move like planets around the sun. In circular orbits at different levels. Amounts of energy separate one level from another.

Bohr s Model Nucleus Electron Orbit Energy Levels

Bohr postulated that: Fixed energy related to the orbit Electrons cannot exist between orbits The higher the energy level, the further it is away from the nucleus An atom with maximum number of electrons in the outermost orbital energy level is stable (unreactive)

How did he develop his theory? He used mathematics to explain the visible spectrum of hydrogen gas

Low energy Radio Micro waves waves Low Frequency Long Wavelength Infrared Ultraviolet. Visible Light High energy X- Gamma Rays Rays High Frequency Short Wavelength

The line spectrum electricity passed through a gaseous element emits light at a certain wavelength Can be seen when passed through a prism Every gas has a unique pattern (color)

Line spectrum of various elements

Drawback Bohr s theory did not explain or show the shape or the path traveled by the electrons. His theory could only explain hydrogen and not the more complex atoms

Increasing energy Fifth Fourth Third Second First Further away from the nucleus means more energy. There is no in between energy Energy Levels

The Quantum Mechanical Model Energy is quantized. It comes in chunks. A quanta is the amount of energy needed to move from one energy level to another. Since the energy of an atom is never in between there must be a quantum leap in energy. Schrö dinger derived an equation that described the energy and position of the electrons in an atom

Heated gases emit line spectra (v. heated solids) In 1885, J. J. Balmer showed that the wavelengths,, in the visible spectrum of hydrogen could be reproduced by a simple formula. 1 7 m 1 The known wavelengths of the four visible lines for hydrogen correspond to values of n = 3, n = 4, n = 5, and n = 6. 1 2 2 1 n 2

Prior to the work of Niels Bohr, the stability of the atom could not be explained using the then-current theories. How can e - lose energy and remain in orbit???? Bohr in 1913 set down postulates to account for (1) the stability of the hydrogen atom and (2) the line spectrum of the atom. 1. Energy level postulate An electron can have only specific energy levels in an atom. 2. Transitions between energy levels An electron in an atom can change energy levels by undergoing a transition from one energy level to another.

Energy-level Diagram for the Electron in the Hydrogen Atom

Transitions of the Electron in the Hydrogen Atom

Bohr Theory of the Hydrogen Atom Bohr s Postulates Bohr s theory explains not only the emission of light, but also the absorption of light. When an electron falls from n = 3 to n = 2 energy level, a photon of red light (wavelength, 685 nm) is emitted. When red light of this same wavelength shines on a hydrogen atom in the n = 2 level, the energy is gained by the electron that undergoes a transition to n = 3.

Bohr s theory established the concept of atomic energy levels but did not thoroughly explain the wave-like behavior of the electron. Current ideas about atomic structure depend on the principles of quantum mechanics, a theory that applies to subatomic particles such as electrons. Electrons show properties of both waves and particles.

The Bohr model for an electron transition in hydrogen between quantized energy levels with different quantum numbers n yields a photon by emission, with quantum energy h 8 me 2 0 4 h 2 n 1 2 1 n 1 2 2 13.6 n 1 2 1 n 1 2 2 ev This is often expressed in terms of the inverse wavelength or "wave number" as follows: R H me 2 0 4 8 ch 3 R H 1.097 10 7 m 1

Failures of the Bohr Model While the Bohr model was a major step toward understanding the quantum theory of the atom, it is not in fact a correct description of the nature of electron orbits. Some of the shortcomings of the model are: 1. It fails to provide any understanding of why certain spectral lines are brighter than others. There is no mechanism for the calculation of transition probabilities. 2. The Bohr model treats the electron as if it were a miniature planet, with definite radius and momentum. This is in direct violation of the uncertainty principle which dictates that position and momentum cannot be simultaneously determined. The Bohr model gives us a basic conceptual model of electrons orbits and energies. The precise details of spectra and charge distribution must be left to quantum mechanical calculations, as with the Schrö dinger equation.

Bragg Diffraction

Diffraction Pathlength difference = 2dsin. Constructive Interference: 2dsin = n = h/p Photon E=pc Slow Neutron: E = p 2 /(2M) See pictures in text

Wave-Particle Duality: Light Does light consist of particles or waves? When one focuses upon the different types of phenomena observed with light, a strong case can be built for a wave picture: Phenomenon Reflection Refraction Interference Diffraction Polarization Can be explained in terms of waves. Can be explained in terms of particles. Photoelectric effect Compton scattering Most commonly observed phenomena with light can be explained by waves. But the photoelectric effect and the Compton scatering suggested a particle nature for light. Then electrons too were found to exhibit dual natures.

The first clue in the development of quantum theory came with the discovery of the de Broglie relation. In 1923, Louis de Broglie reasoned that if light exhibits particle aspects, perhaps particles of matter show characteristics of waves. He postulated that a particle with mass m and a velocity v has an associated wavelength. The equation = h/mv is called the de Broglie relation.

de Broglie Waves and the Bohr Model Why is the angular momentum of the electron restricted to certain values? The electron has a wavelength and forms standing waves in its orbit around the nucleus. An integral number of electron wavelengths must fit into the circumference of the circular orbit. n 2 r h h nh p mv n 1,2,3,... (2 r / n) 2 r nh L rmv n 1,2,3,... 2

If matter has wave properties, why are they not commonly observed? The de Broglie relation shows that a baseball (0.145 kg) moving at about 60 mph (27 m/s) has a wavelength of about 1.7 x 10-34 m. kg m 2 34 6.63 10 s 1.7 10 34 This value (0.145 is so kg)(27 incredibly m / s) small that such waves cannot be detected. Electrons have wavelengths on the order of a few picometers (1 pm = 10-12 m). m

Quiz Which of the following particles has the shortest wavelength? ( = h/mv) a. an electron traveling at x m/s b. a proton traveling at x m/s c. a proton traveling at 2x m/s

Measuring the position and momentum of an electron Shine light on electron and detect reflected light using a microscope Minimum uncertainty in position is given by the wavelength of the light So to determine the position accurately, it is necessary to use light with a short wavelength

Measuring the position and momentum of an electron (cont d) By Planck s law E = hc/, a photon with a short wavelength has a large energy Thus, it would impart a large kick to the electron But to determine its momentum accurately, electron must only be given a small kick This means using light of long wavelength!

Use light with short wavelength: accurate measurement of position but not momentum Use light with long wavelength: accurate measurement of momentum but not position

Heisenberg s Uncertainty Principle The more accurately you know the position (i.e., the smaller x is), the less accurately you know the momentum (i.e., the larger p is); and vice versa

Heisenberg s Uncertainty Principle involving energy and time The more accurately we know the energy of a body, the less accurately we know how long it possessed that energy The energy can be known with perfect precision ( E = 0), only if the measurement is made over an infinite period of time ( t = )

Quantum mechanics is the branch of physics that mathematically describes the wave properties of submicroscopic particles. We can no longer think of an electron as having a precise orbit in an atom. To describe such an orbit would require knowing its exact position and velocity. In 1927, Werner Heisenberg showed (from quantum mechanics) that it is impossible to know both simultaneously.

Heisenberg s uncertainty principle is a relation that states that the product of the uncertainty in position ( x) and the uncertainty in momentum (m v x ) of a particle can be no smaller than h/4. ( x)( m v ) x 4 When m is large (for example, a baseball) the uncertainties are small, but for electrons, high uncertainties disallow defining an exact orbit. h

Quantum Mechanics Although we cannot precisely define an electron s orbit, we can obtain the probability of finding an electron at a given point around the nucleus. Erwin Schrodinger defined this probability in a mathematical expression called a wave function, denoted (psi). The probability of finding a particle in a region of space is defined by 2.

Quantum Numbers and Atomic Orbitals According to quantum mechanics, each electron is described by four quantum numbers. Principal quantum number (n) Angular momentum quantum number (l) Magnetic quantum number (m l ) Spin quantum number (m s ) The first three define the wave function for a particular electron. The fourth quantum number refers to the magnetic property of electrons.

Quantum Numbers and Atomic The principal quantum number(n) represents the shell number in which an electron resides Orbitals The smaller n is, the smaller the orbital The smaller n is, the lower the energy of the electron

Quantum Numbers and Atomic Orbitals The angular momentum quantum number (l) distinguishes sub shells within a given shell that have different shapes. Each main shell is subdivided into sub shells. Within each shell of quantum number n, there are n sub shells, each with a distinctive shape. l can have any integer value from 0 to (n - 1) The different subshells are denoted by letters. Letter s p d f g l 0 1 2 3 4.

Quantum Numbers and Atomic The magnetic quantum number (m l ) distinguishes orbitals within a given sub-shell shell that have different shapes and orientations in space. Orbitals Each sub shell is subdivided into orbitals, each capable of holding a pair of electrons. m l can have any integer value from -l to +l. Each orbital within a given sub shell has the same energy.

Quantum Numbers and Atomic The spin quantum number (m s ) refers to the two possible spin orientations of the electrons residing within a given orbital. Each orbital can hold only two electrons whose spins must oppose one another. The possible values of m s are +1/2 and 1/2. Orbitals