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Lecture 24 (7.1-7.2)
Lecture 24 (7.1-7.2)

Unit 2 Practice Exam exam_2p_08_matter
Unit 2 Practice Exam exam_2p_08_matter

... 42. Why do atomic radii increase dramatically with each additional row of the periodic table? a. atomic nuclei become increasingly attractive as more protons are added. b. another energy level is utilized by the electrons. c. the energy required to remove an electron is reduced by shielding of inter ...
ECE692_3_1008
ECE692_3_1008

Molecular Statistics
Molecular Statistics

... another, there will be no relation among the coordinates of the two atoms. On the other hand, when the two atoms are bound, the displacement of each other is coupled to the other. The result is to give three translational, one vibrational, and two rotational degrees of freedom for the ...
Electrons and Atoms
Electrons and Atoms

Chapter 12: Basic Review Worksheet
Chapter 12: Basic Review Worksheet

The Chemical Earth (8.2.3)
The Chemical Earth (8.2.3)

... Electron Shells (contd.) • The lowest energy level is the “K” shell, it is the nearest to the nucleus. Electrostatic attraction at this level is greatest for the electrons. • As we move away from the nucleus into higher energy levels, nuclear attraction becomes less. (See “Atomic Size” power point ...
NAME PERIOD ______ DATE Chapter 5 Sec. 2
NAME PERIOD ______ DATE Chapter 5 Sec. 2

... 10. How many orientations are possible for the orbitals related to each of the following sublevels? a. s b. p c. d d. f ...
Electrons as waves
Electrons as waves

Chapter 5/6 Notes
Chapter 5/6 Notes

... 6.1 Organizing the Elements and Classifying the Elements Origin of the Periodic Table Dimitri Mendeleev – published the first real periodic table in 1869 - Based upon chemical and physical properties - Listed elements in order of increasing atomic mass - Left spaces for undiscovered elements ...
Review Sheet for Final Exam
Review Sheet for Final Exam

... If a color is emitted, that means that the other colors are being absorbed and there should be a peak on the spectrum at those colors wavelength values. -Photosynthesis When light strikes a molecule of chlorophyll, it absorbs energy and the electrons are excited and move to a higher energy level. Th ...
Quantum Theory
Quantum Theory

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Transcript - the Cassiopeia Project

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Electromagnetism Quiz Review

... 7. Concerning the photoelectric effect, which of the following is not true? A) For most metals, ultraviolet light is needed for the photoelectric effect to occur. B) Because a faint light contains very little energy, it take as few minutes before electrons are emitted from the metal it is shining u ...
Matter and Energy
Matter and Energy

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Electrons!

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Chemistry Outcomes - hrsbstaff.ednet.ns.ca

... Give assumptions of Bohr Model Explain the hydrogen line spectrum in terms of Bohr Model of the atom State two differences between the Bohr model and the quantum mechanical model of the atom Draw an energy level diagram for a given atom Define valence shell and valence electrons Label the sublevels ...
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Discovery of the Electron, Models & Theories

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Kinetic Molecular Theory

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Print › Honors Chemistry Unit 02 Vocabulary | Quizlet

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How electrons produce color

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Ch. 5 Electrons in Atoms

Atoms1 - Cbsephysicstutorials
Atoms1 - Cbsephysicstutorials

... d) The electrons revolve around the nucleus in various orbits just as planets revolve around the sun. e) The centripetal force required for their revolution is provided by the electrostatic attraction between the electrons and the nucleus. • Draw-back of Rutherford Model: This model could not explai ...
The Bohr Theory, Matter Waves, and Quantum Theory
The Bohr Theory, Matter Waves, and Quantum Theory

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X-ray photoelectron spectroscopy



X-ray photoelectron spectroscopy (XPS) is a surface-sensitive quantitative spectroscopic technique that measures the elemental composition at the parts per thousand range, empirical formula, chemical state and electronic state of the elements that exist within a material. XPS spectra are obtained by irradiating a material with a beam of X-rays while simultaneously measuring the kinetic energy and number of electrons that escape from the top 0 to 10 nm of the material being analyzed. XPS requires high vacuum (P ~ 10−8 millibar) or ultra-high vacuum (UHV; P < 10−9 millibar) conditions, although a current area of development is ambient-pressure XPS, in which samples are analyzed at pressures of a few tens of millibar.XPS is a surface chemical analysis technique that can be used to analyze the surface chemistry of a material in its as-received state, or after some treatment, for example: fracturing, cutting or scraping in air or UHV to expose the bulk chemistry, ion beam etching to clean off some or all of the surface contamination (with mild ion etching) or to intentionally expose deeper layers of the sample (with more extensive ion etching) in depth-profiling XPS, exposure to heat to study the changes due to heating, exposure to reactive gases or solutions, exposure to ion beam implant, exposure to ultraviolet light.XPS is also known as ESCA (Electron Spectroscopy for Chemical Analysis), an abbreviation introduced by Kai Siegbahn's research group to emphasize the chemical (rather than merely elemental) information that the technique provides.In principle XPS detects all elements. In practice, using typical laboratory-scale X-ray sources, XPS detects all elements with an atomic number (Z) of 3 (lithium) and above. It cannot easily detect hydrogen (Z = 1) or helium (Z = 2).Detection limits for most of the elements (on a modern instrument) are in the parts per thousand range. Detection limits of parts per million (ppm) are possible, but require special conditions: concentration at top surface or very long collection time (overnight).XPS is routinely used to analyze inorganic compounds, metal alloys, semiconductors, polymers, elements, catalysts, glasses, ceramics, paints, papers, inks, woods, plant parts, make-up, teeth, bones, medical implants, bio-materials, viscous oils, glues, ion-modified materials and many others.XPS is less routinely used to analyze the hydrated forms of some of the above materials by freezing the samples in their hydrated state in an ultra pure environment, and allowing or causing multilayers of ice to sublime away prior to analysis. Such hydrated XPS analysis allows hydrated sample structures, which may be different from vacuum-dehydrated sample structures, to be studied in their more relevant as-used hydrated structure. Many bio-materials such as hydrogels are examples of such samples.
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