Light and Quantized Energy

Slides:



Advertisements
Similar presentations
Physics and the Quantum Mechanical Model Section 13.3
Advertisements

Niels Bohr in 1913 proposed a quantum model for the hydrogen atom which correctly predicted the frequencies of the lines (colors) in hydrogen’s atomic.
Light and Quantized Energy
Creating a foldable for the electrons in atoms notes
Electromagnetic Radiation
Electromagnetic Radiation. Definitions Electromagnetic Radiation is energy with wavelike characteristics Moves at a speed of 3.0 x 10 8 m/s.
Chapter 5 Electrons In Atoms.
Properties of Light Is Light a Wave or a Particle?
ELECTROMAGNETIC RADIATION AND THE NEW ATOMIC MODEL.
Light and Electrons October 27, 2014.
SPECTRUMSPECTRUMSPECTRUMSPECTRUM  Electromagnetic Spectrum.
Electronic Structure. Wavelength ____________ (λ) - the shortest distance between equal points wave.
Chapter 4 Arrangement of Electrons in Atoms
Electron Behavior Electron absorb energy and jump to higher energy level (Excited State). Immediately fall back to original level (Ground State) emitting.
Chapter 4 Arrangement of Electrons in Atoms
I II III  Suggested Reading Pages  Section 4-1 Radiant Energy.
Electronic Structure. Bohr Bohr proposed that the __________ atom has only certain allowable energy states.
Chapter 5 Electrons in Atoms.
Light and Quantized Energy Chapter 5 Section 1. Wave Nature of Light Electromagnetic radiation is a form of energy that exhibits wavelike behavior as.
Section 11.1 Atoms and Energy 1.To review Rutherford’s model of the atom 2.To explore the nature of electromagnetic radiation 3.To see how atoms emit light.
Electromagnetic Spectrum
Arrangement of Electrons in Atoms The Development of a New Atomic Model.
Bellwork What is the majority of the volume of an atom?
ARRANGEMENT of ELECTRONS in ATOMS CHAPTER 4. DESCRIBING THE ELECTRON Questions to be answered: How does it move? How much energy does it have? Where could.
The Bohr Model of the Atom: Bohr’s major idea was that the energy of the atom was quantized, and that the amount of energy in the atom was related to the.
Electrons and Light. Light’s relationship to matter Atoms can absorb energy, but they must eventually release it When atoms emit energy, it is released.
Development of a New Atomic Model Properties of Light.
Electron As a Particle and Wave Electrons get excited when energy is absorbed by using heat or electrical energy Electrons get excited when energy is absorbed.
The Dilemma  Particles have mass and a specific position in space (matter)  Waves have NO mass and NO specific position in space (light and energy)
Electrons in Atoms Light is a kind of electromagnetic radiation. All forms of electromagnetic radiation move at 3.00 x 10 8 m/s. The origin is the baseline.
Vocabulary Review New radiation electromagnetic radiation wavelength
Chemistry – Chapter 4. Rutherford’s Atomic Model.
Section 5.1 Light and Quantized Energy. Objectives Compare the wave and particle models of light Compare the wave and particle models of light Define.
Electrons in Atoms. Wave Behavior of Light Day 1.
Models, Waves, and Light Models of the Atom Many different models: – Dalton-billiard ball model (1803) – Thompson – plum-pudding model (1897) – Rutherford.
C. Johannesson I. Waves & Particles (p ) Ch. 5 - Electrons in Atoms.
Quantum Theory and the Electronic Structure of Atoms Chapter 7.
Light, Quantitized Energy & Quantum Theory CVHS Chemistry Ch 5.1 & 5.2.
Light and Quantized Energy Light and Quantized Energy Essential Question: What are the quantitative and qualitative properties across the range of the.
Light and Electrons.
Physics and the Quantum Mechanical Model
Lesson 16 Modern View of the Atom
Atomic Structure.
Light’s Wave Nature.
Arrangement of electrons in atoms
Lecture 20 Light and Quantized Energy Ozgur Unal
Light and Quantized Energy
Section 5.1 Light and Quantized Energy
Light: Electromagnetic Spectrum
Chapter 5 Electrons in Atoms.
Chapter 5 Electrons in Atoms
Chapter 5 Electrons in Atoms.
Chemistry 1 Notes # 8 Light and Quantized Energy
11/10/16 Today I will define the characteristics of a wave and compare the major regions of the electromagnetic spectrum. Warm Up – What are the three.
Section 5.1 Light and Quantized Energy
I. Waves & Particles (p ) Ch. 4 - Electrons in Atoms I. Waves & Particles (p )
Section 1: Light and Quantized Energy
UNIT 3 ELECTRON CONFIGURATION AND MODERN ATOMIC THEORY
Waves and particles Ch. 4.
Chemistry 1 Chapter 5 Part I Light and Quantized Energy
Light and Energy Electromagnetic Radiation is a form of energy that is created through the interaction of electrical and magnetic fields. It displays wave-like.
Light’s Wave Nature.
Section 5.1 Light and Quantized Energy
5.1 – ELECTRONS IN ATOMS.
Electron Configurations
Electromagnetic Spectrum
Chapter 4 Arrangement of Electrons in Atoms
Ch. 5 - Electrons in Atoms Waves & Particles.
Section 1: Light and Quantized Energy
Section 1: Light and Quantized Energy
Presentation transcript:

Light and Quantized Energy Essential Question: How would you use the formula c=lv and E=hv in wave calculations?

Wave Nature of Light? As we discussed, electrons release energy in the form of a photon. Photons travel in the form of a wave, so it is necessary to understand the functionality of a wave to better understand light.

Parts of a wave peak wavelength amplitude trough

Characteristics of Waves Wavelength ( λ ) – shortest distance between 2 equivalent points on a continuous waves (from crest to crest or from trough to trough) Units of wavelength: Usually in meters (100), Centimeters (10-2) or Nanometers (10-9)

Comparing Wavelengths Which wave has a longer wavelength? Which wave has the shorter wavelength? long wavelength crest Wavelength Wavelength trough short wavelength

Characteristics of Waves Frequency ( v ) – number of waves that pass a given point per second Units of frequency: waves per second 1 / s = s -1 = Hertz

So which type of wave has a higher frequency……one with a long wave length or one with a short wavelength Wave A Wave B Wave C

Another way to look at Frequency These 2 waves are traveling at = speeds… more crests cross the ‘finish line’ in a matter of one min.? which wave will have low frequency = long wavelength high frequency = short wavelength

Characteristics of a Wave Amplitude – wave’s height from the origin of the wave to the crest or from the origin to the trough origin

Vocab & Symbols Speed of light (c) – constant number, 3.00 x 108 m/s Wavelength ( λ ) – shortest distance between 2 equivalent points on a continuous waves; measured in m Frequency ( v ) – number of waves that pass a given point per second; measured in Hz Energy (E) – energy of the photon as it travel; measured in Joules, J Planck’s Constant (h) – constant number, 6.626 x 10-34 J . s

Wave Calculations All electromagnetic waves travel at the speed of light in a vacuum Speed of light (c) = 3.00 x 108 m/s Speed of light is equal to product of wavelength and frequency c = λ v Rearrange to solve for wavelength or frequency. Remember speed of light (c) is a constant, always the same number

Wave Calculations Practice Green light has a frequency of 6.01 x 1014 Hz. What is the wavelength? Violet has a wavelength of 410 nm. What is the frequency?

What units of wavelength are needed? What do you have to do if you are given a wavelength of nm?

Photoelectric Effect Electrons are emitted from a metal’s surface when light with a certain frequency hits the surface

Photoelectric Effect Frequency and energy do not accumulate on the metal’s surface Specific threshold needed to be reached before the electron would be emitted

Dual Nature of Light Explains the photoelectric effect Albert Einstein proposed that light has wavelike and particle like properties Photon – massless particle that carries a quantum of energy Ephoton = hv

Energy Calculations All energy is a multiple of Planck’s Constant, a quantum of action in quantum mechanics h = 6.626 x 10-34 J . s Quantum – minimum amount of energy that can be gained or lost by an atom Planck stated that there was a relationship between the energy of a quantum and the frequency of the radiation

E = h v Energy Calculations Energy of a photon is calculated by the multiple of Planck’s constant by frequency E = h v Rearrange to solve for energy or frequency. Remember Planck’s constant (h) is always the same number

Energy Calculations Practice Calculate the E of a photon of radiation with a frequency of 8.5 x 1014 Hz . What is the υ of of a wave carrying 8.35 x 10-18 J of energy?

Using BOTH Formulas What is the wavelength of the yellow sodium emission which has a frequency of 5.09 x 1014 s-1? The frequency of the strong red line in the spectrum of potassium is 3.91 x 1014 s-1. What is the wavelength of light?

Heisenberg Uncertainty Principle States it is impossible to know the velocity and the position of a particle at the same time. This is due to the fact that in order to determine the original location of an electron it would have to be hit with a high energy photon to “move” it to the new location, and therefore determine original location. However, by “hitting” it with the high energy particle would cause the original energy & wavelength to change, so the data would not be accurate.