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Lab 9 Atomic Structure  Emission Spectrum Electron Configuration
HISTORY OF THE ATOM 460 BC Democritus develops the idea of atoms he pounded up materials in his mortar and pestle until he had reduced them to smaller and smaller particles which he called ATOMS   ( greek for indivisible )
Development of the  Model of an Atom ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
HISTORY OF THE ATOM 1808 John Dalton suggested that all matter was made up of tiny spheres that were able to bounce around with perfect elasticity and called them ATOMS
Dalton proposes  Atomic Theory in 1803 ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
HISTORY OF THE ATOM 1898 Joseph John Thompson found that atoms could sometimes eject a far smaller negative particle which he called an ELECTRON
Thomson and the Discovery of Electrons
 
J. J. Thomson’s Experiment Devised an experiment to find the ratio of the cathode ray particle’s mass ( m e ) to the charge ( e ) m e  / e =  –5.686 x 10 –12  kg C –1
Thomson’s Plum Pudding Model ,[object Object],[object Object]
HISTORY OF THE ATOM Thomson develops the idea that an atom was made up of electrons scattered unevenly within an elastic sphere surrounded by a soup of positive charge to balance the electron's charge 1904 PLUM PUDDING MODEL
Millikan’s Oil Drop Experiment Measuring the Charge on an electron
Unstable Atoms and Radioactivity ,[object Object],[object Object],[object Object],[object Object],[object Object]
Radioactivity
Goldstein’s Discovery of Protons
Mass Spectrometer-  Determining the Percent Abundance of Different Isotopes of same element
Mass Spectrometer If a stream of positive ions having equal velocities is brought into a magnetic field, the lightest ions are deflected the most, making a tighter circle
Mass Spectrometry EOS A record of the separation of ions is called a  mass spectrum
Isotopes of Neon ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
HISTORY OF THE ATOM 1910 Ernest Rutherford oversaw Geiger and Marsden carrying out his famous experiment.  They fired Helium nuclei at a piece of gold foil which was only a few atoms thick. They found that although most of them passed through. About 1 in 10,000 hit
Rutherford’s Gold Foil Experiment
Rutherford’s Gold Foil Experiment gold foil helium nuclei They found that while most of the helium nuclei passed through the foil, a small number were deflected and, to their surprise, some helium nuclei bounced straight back.
Rutherford’s  Nuclear Model of the Atom ,[object Object],[object Object],[object Object],[object Object],[object Object]
Visualizing the Pathway of Alpha Particles through a Gold Atom
ELECTROMAGNETIC RADIATION
Electromagnetic radiation.
Electromagnetic Radiation ,[object Object]
Electromagnetic Radiation
The Electromagnetic Spectrum
Wave Model of Light ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Wavelength, Frequency and Energy ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Electromagnetic Radiation wavelength Visible light wavelength Ultaviolet radiation Amplitude Node
Electro magnetic   Spectrum In increasing energy, R O Y   G   B I V
 
Sunlight viewed through a spectroscope
Prisms and diffraction grating  bend light  ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Photoelectric Effect
Photoelectric Effect ,[object Object],[object Object],[object Object]
Explaining the Photoelectric Effect ,[object Object],[object Object],[object Object],[object Object]
Light Spectrum Lab! Slit that allows light inside Line up the slit so that it is parallel with the spectrum tube (light bulb)
The Emission Spectrum of Hydrogen-  Discrete Bands of Colored Light
Excited Gases  & Atomic Structure
Emission Spectra of Different Atoms: A Fingerprint to Identify
Rydberg and Balmer (1886) ,[object Object],[object Object],[object Object],[object Object]
Rydberg Equation ,[object Object],[object Object],[object Object]
Bohr’s Model of the Atom (1910) ,[object Object],[object Object],[object Object],[object Object]
Bohr’s Model of the Atom (1910) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Bohr’s Calculations  of the Energy Δ E = -2.18 x 10 -18  J (1/n f 2  – 1/n i 2 ) n = the energy level Δ E = positive when electron climbs up levels absorbing energy increasing PE Δ E = negative when e- falls down levels releasing energy decreasing PE
Niels Bohr (1885-1962) Δ E = -2.18 x 10 -18  J (1/n f 2  – 1/n i 2 ) Calculate the energy as an electron drops from level 6 down to level 2. Calculate the frequency and wavelength of this photon.
ultraviolet infrared
Visualizing the Movement of the Electron
 
Line Spectra of Other Elements Oops.  Bohr’s equation does NOT predict these wavelengths.
 
Visualizing the “falling” e- Where does the electron have more potential energy?
Electron is a wave - De Broglie  ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],λ  = h/p
Quantum Mechanics ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
E. Schrodinger 1887-1961 W. Heisenberg 1901-1976 Wave Functions:  Calculating the Probability of locating an electron in a region of space The Uncertainty Principle:   Cannot both determine location and energy of electron
The Wave Function and Orbitals
The region near the nucleus is separated from the outer region by a spherical  node  - a spherical shell in which the electron probability is zero EOS
 
Quantum Numbers ,[object Object],[object Object],[object Object],[object Object],[object Object]
Increasing Radius of s-orbital with higher values of n
s orbital p orbital d orbital
 
 
f Orbitals
 
 
 
The s-orbital Spherical shaped orbital ℓ  = 0 m ℓ  = 0 Only one s-orbital in any energy level
The p-orbital Double-lobe shaped orbital ℓ  = 1 mℓ = -1 or 0 or +1 Only three p-orbitals in any energy level- except for level one
Planes of zero probability
Model of d-orbital
Only electrons with opposite spins can be in the same orbital
Electron Configurations ,[object Object],[object Object],[object Object],[object Object]
Use sum of first two quantum numbers to determine which orbital fills first
 
 
 
 
 
 
 
 
 
 
 
Nickel  Electron Configuration and quantum numbers 1s   2s  2p   3s  3p 1 0 0  ½  2 0 0 ½  2 1 -1 ½  2 1 0 ½  3 0 0 ½   3 1 0 ½   2 1 0 ½   3 1 -1 ½  3 1 0 ½ 4s   3d 4 01 0 ½   3 2 -2 ½  3 2 -1 ½  3 2 0 ½  3 2 1 ½  3 2 1 ½  1 st  # indicates energy level n = 1 1 st  level n = 2  2 nd  level 2 nd  # type of orbital l = 0  is s-orbital l = 1 is p-orbital l = 2 is d-orbital

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Lab 9 atomic structure