Recapping the Planck Formula

Slides:



Advertisements
Similar presentations
RADIO WAVES, MICROWAVES, INFRARED, VISIBLE, ULTRAVIOLET, X-RAYS, GAMMA RAYS HIGH< wavelength LOW.
Advertisements

Pop Quiz On a piece of paper write your name and the answers to the following questions. When you are finished place your answers in the tray on my desk.
Waves. Characteristics of Waves Frequency Amplitude.
Wavelength, Frequency, and Energy Practice Problems
Electromagnetic Spectrum
Radiant Energy  .
November 22, Name of the Game: ENERGY And also: NOBEL PRIZES FOR PHYSICS.
Advanced Higher Chemistry Unit 1 The Electromagnetic Spectrum.
Wave Nature of Light and Quantum Theory
Light. Light Terminology Which is not a measure we use to identify a type of light? A. Wavelength B. Speed C. Frequency D. Energy.
SPECTRUMSPECTRUMSPECTRUMSPECTRUM  Electromagnetic Spectrum.
Wavelength Visible light wavelength Ultraviolet radiation Amplitude Node Chapter 6: Electromagnetic Radiation.
Electromagnetic Spectrum. The electromagnetic spectrum covers a wide range of wavelengths and photon energies.
The Electromagnetic Spectrum A continuous range of oscillating electric and magnetic waves. The energy in an electromagnetic wave increases as the frequency.
Wavelength and Frequency E = h c =  c = speed of light (3 x 10 8 m/s) = frequency (s -1 )  = wavelength (m) E = energy (Joules or J) h  = Planck’s constant.
Light and Electrons! Ch 11. Light & Atomic Spectra A Brief Bit of History (development of the quantum mechanical model of the atom) Grew out of the study.
Objectives I can calculate wavelength, frequency or energy of light. I can explain the emission spectrum of an element.
CONTENT OBJECTIVE understand the electromagnetic spectrum and the mathematical relationships between energy, frequency, and wavelength of light. WHAT.
ELECTROMAGNETIC RADIATION subatomic particles (electron, photon, etc) have both PARTICLE and WAVE properties Light is electromagnetic radiation - crossed.
The Electromagnetic Spectrum Contents: The Spectrum Basic Concepts Whiteboards.
LIGHT and QUANTIZED ENERGY. Much of our understanding of the electronic structure of atoms has come from studying how substances absorb or emit light.
Electromagnetic Spectra. The Electromagnetic Spectrum AM radio Short wave radio Television channels FM radio Radar Microwave Radio Waves Gamma Rays X-
Chemistry – Chapter 4. Rutherford’s Atomic Model.
Electrons and the Electromagnetic Spectrum. Electromagnetic Radiation: energy that exhibits wavelike behavior and travels at the same speed Properties.
Wavelength, Frequency, and Planck’s Constant. Formulas 1)E = hf E = energy (Joules J) h = Planck’s constant = 6.63 x J x s f = frequency (Hz) 2)
The Bohr ModelNiels Bohr Violet: nm Indigo: nm Blue: nm Green: nm Yellow: nm Orange:
Using Planck’s Constant…. Picture credit: He was a German physicist and is considered as the founder.
The Electromagnetic Spectrum
© OCR 2016 Electromagnetic spectrum Lesson Element.
Remember that all types of EM waves move at the speed of light (3.0 x 10 8 m/s).
Warm-Up What is the difference between the Bohr’s Model of the Atom and the Quantum Model of the atom. What wavelength is associated with an electron.
LIGHT and QUANTIZED ENERGY.
Electrons in Atoms Chapter 4.
The Electromagnetic Spectrum Part 1
Light’s Wave Nature.
Electromagnetic Radiation
Light Ken Rogers Miami Killian.
WAVES AND THE ELECTROMAGNETIC SPECTRUM
Light and the Atomic Spectra
Electromagnetic Spectrum Project
Chapter 6: Electromagnetic Radiation
The Study of Light Light is a form of ENERGY.
Do Now: Label the parts of a wave:
Can a soccer ball Diffract?
Light… Wave or Particle?
What is light?.
25.1 The Electromagnetic Spectrum
25.1 The Electromagnetic Spectrum
WHAT THE HECK DO I NEED TO BE ABLE TO DO?
Review Lepton Number Particle Lepton number (L) electron 1 neutrino
I. Waves & Particles (p ) Ch. 4 - Electrons in Atoms I. Waves & Particles (p )
FLAME TEST.
Electromagnetic Waves
Electromagnetic Spectrum
Light’s Wave Nature.
Quantum Theory.
5.
Wavelength and Frequency
c =  f E = ℏf Where : ℏ = 6.63 x J٠s velocity -
Warm-up Example 3 from Practice Atomic Mass notes on pg 31!
Electron Configurations
Electromagnetic Spectrum
Quantum Physics – Photons Mr Nesbo
Chemistry Unit 3 Chapter 4 and 5 – Atomic Structure
Electromagnetic Spectrum
Ch. 5 - Electrons in Atoms Waves & Particles.
Chapter 5 Electronic Structure and Periodic Trends
The Electromagnetic Spectrum
Light and the electron.
06 / 09 Wednesday Kaupapa Describe the characteristics of seven types of Electromagnetic Radiation from the Sun.
Presentation transcript:

Recapping the Planck Formula

Remember Light, gamma rays, microwaves etc are all electromagnetic waves. An electromagnetic wave is made up a stream of particles called photons. Each photon has no mass but has a fixed amount of energy. The energy of the photon depends on the frequency of the light

Remember The energy of a photon = planck’s constant (H) x the frequency of the light(f)

Using the formula The value of Plank’s constant is 6.63 × 10-34 m2 kg s-1 Blue light of a frequency 6.00 x 1014 Hz is composed of a stream of photons What is the energy of each photon? Using E=hf E = 6.63 x 10-34 x 6.00 x 1014 E = 6.63 x 6.00 x 10-20 E = 3.98 x 10-19J

Using the formula The value of Plank’s constant is 6.63 × 10-34 m2 kg s-1 Microwaves in a microwave oven are composed of a stream of photons What is the energy of each photon if the microwaves have a frequency of 2450MHz? Using E=hf E = 6.63 x 10-34 x 2450 x 106 E = 6.63 x 2450 x 10-28 E = 1.62 x 10-24J

Using the formula The value of Plank’s constant is 6.63 × 10-34 m2 kg s-1 A particular gamma ray has a frequency of 5.00 x 1022 What is the energy of each photon? Using E=hf E = 6.63 x 10-34 x 6.00 x 1022 E = 6.63 x 6.00 x 10-12 E = 3.98 x 10-13J

Energy and photons E = 3.98 x 10-19J E = 1.62 x 10-24J The photons which make up the light have increasing energy as the frequency becomes greater

Wavelength If you are given the wavelength of the light rather than the frequency you use the wave formula c=λf to find the frequency of the light first. What is the energy of photons of red light with a wavelength of 700nm? Use this in the normal way in E=hf to find the energy of the photons.