Handout - EnvLit - Michigan State University
... How do K-12 students from the US and China reason about carbon-transforming processes? How do American and Chinese students progress with respect to reasoning about carbon-transforming processes from elementary to high school? ...
... How do K-12 students from the US and China reason about carbon-transforming processes? How do American and Chinese students progress with respect to reasoning about carbon-transforming processes from elementary to high school? ...
Science Olympiad
... (A) ionization energy decreases due to increases shielding effect. (B) atomic radius decreases due to an increase in effective nuclear charge. (C) electronegativity decreases due to an increase in atomic radius. (D) electron affinity decreases due to an increase in effective nuclear charge. (E) ioni ...
... (A) ionization energy decreases due to increases shielding effect. (B) atomic radius decreases due to an increase in effective nuclear charge. (C) electronegativity decreases due to an increase in atomic radius. (D) electron affinity decreases due to an increase in effective nuclear charge. (E) ioni ...
Sections 6.3-6.5
... • Energy is added to an atomelectron moves to higher energy level • Electron in “excited state” drops to a lower energy orbit emits a photon E = E ...
... • Energy is added to an atomelectron moves to higher energy level • Electron in “excited state” drops to a lower energy orbit emits a photon E = E ...
Chemistry - Unit 6 What do you need to know?? This chapter is on
... It was Einstein, in 1905, who deduced the basis of the photoelectric effect. I like an example that Dr. Blaber, at Florida State University uses: The Photoelectric effect as a carnival game: "A popular carnival game is where you are given a giant mallet and have to hit a pad on the ground. This send ...
... It was Einstein, in 1905, who deduced the basis of the photoelectric effect. I like an example that Dr. Blaber, at Florida State University uses: The Photoelectric effect as a carnival game: "A popular carnival game is where you are given a giant mallet and have to hit a pad on the ground. This send ...
Study Guide For Final Exam
... Applying laws of classical physics to explain behavior of matter at an atomic scale fails for: • Blackbody Radiation • Photoelectric Effect • Spectral Lines by Atoms Revolution in physics between 1900 and 1930 – Quantum Mechanics ...
... Applying laws of classical physics to explain behavior of matter at an atomic scale fails for: • Blackbody Radiation • Photoelectric Effect • Spectral Lines by Atoms Revolution in physics between 1900 and 1930 – Quantum Mechanics ...
What is LIGHT? Atomic Physics and
... The lowest energy level is called the ground state (closest to nucleus). To move "up", the electron must absorb a certain (exact) amount of energy from a photon. This new "excited" state for the electron is unstable and the electron returns to ground state. As it falls, the electron emits a pho ...
... The lowest energy level is called the ground state (closest to nucleus). To move "up", the electron must absorb a certain (exact) amount of energy from a photon. This new "excited" state for the electron is unstable and the electron returns to ground state. As it falls, the electron emits a pho ...
The Hydrogen Atom - Valdosta State University
... vary since real atoms don’t have fixed distances between nuclei and electrons. 2. Use separation of variables to pull out part already solved for rigid rotor (angular part). 3. Show solution for radial part (r dependent part). E energy will depend only on the n quantum number (and not m or l). Final ...
... vary since real atoms don’t have fixed distances between nuclei and electrons. 2. Use separation of variables to pull out part already solved for rigid rotor (angular part). 3. Show solution for radial part (r dependent part). E energy will depend only on the n quantum number (and not m or l). Final ...
Mid-Term OR Study Guide
... polar bonds in all formulas, show where shared electrons come from with different symbols (x’s, open and solid dots, stars, different color dots, etc.), and put loops around shared electron pairs. (A) Is the bond type between a phosphorus atom and a fluorine atom ionic, polar covalent, or nonpolar c ...
... polar bonds in all formulas, show where shared electrons come from with different symbols (x’s, open and solid dots, stars, different color dots, etc.), and put loops around shared electron pairs. (A) Is the bond type between a phosphorus atom and a fluorine atom ionic, polar covalent, or nonpolar c ...
energy
... • Calculate the wavelength () of yellow light if its frequency () is 5.10 x 1014 Hz. ...
... • Calculate the wavelength () of yellow light if its frequency () is 5.10 x 1014 Hz. ...
By: 3rd Period Chemistry Actinide Ionization Energy Probability
... Region with zero probability of finding an electron orbital Nuclear Model of the Atom Rutherford’s model nucleus with electrons around it Aristotle’s model ...
... Region with zero probability of finding an electron orbital Nuclear Model of the Atom Rutherford’s model nucleus with electrons around it Aristotle’s model ...
Exam Review - hrsbstaff.ednet.ns.ca
... b) a series of bright lines. c) a single series of lines with constant line spacings. d) several series of continuous spectrum. ...
... b) a series of bright lines. c) a single series of lines with constant line spacings. d) several series of continuous spectrum. ...
Lec-23_Strachan
... As a general rule, the order that electrons fill an atom’s subshell is: Once one subshell is filled, the next electron goes into the vacant subshell that is lowest in energy Otherwise, the electron would radiate energy until it reached the subshell with the lowest energy A subshell is filled when it ...
... As a general rule, the order that electrons fill an atom’s subshell is: Once one subshell is filled, the next electron goes into the vacant subshell that is lowest in energy Otherwise, the electron would radiate energy until it reached the subshell with the lowest energy A subshell is filled when it ...
Chapter 7: Electrons in Atoms Electromagnetic Radiation
... Electrons are in motion around the nucleus (orbits) But, for circular orbits, electrons would possess angular momentum (acceleration) and therefore radiate energy! So, using Planck’s quantum hypothesis, 1) Electrons move in fixed orbits around the nucleus 2) Fixed orbits (stationary states) mean p ...
... Electrons are in motion around the nucleus (orbits) But, for circular orbits, electrons would possess angular momentum (acceleration) and therefore radiate energy! So, using Planck’s quantum hypothesis, 1) Electrons move in fixed orbits around the nucleus 2) Fixed orbits (stationary states) mean p ...
Quantum Mechanical Model
... Quantum Mechanical Model • As the energy of an electron increases, so does the quantum number (n) • Each principle energy level is also split up into one or more sublevels • Chart on Pg. 145 [http://www.chemistry.mcmaster.ca/esam/Chapter_4/fig4-2.jpg] ...
... Quantum Mechanical Model • As the energy of an electron increases, so does the quantum number (n) • Each principle energy level is also split up into one or more sublevels • Chart on Pg. 145 [http://www.chemistry.mcmaster.ca/esam/Chapter_4/fig4-2.jpg] ...
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.