Wednesday, June 17, 2015

C1 : 1.2-What is an Atom? & Sub-Atomic Particles ?

A more accurate depiction of an atom, showing it is mostly empty space (grey area) traversed by rapidly moving electrons (blue dots, drawn much larger than to scale) with the heavy nucleus (red and white dot at center, drawn larger than to scale) at center. Its shape is like that of a rural community, with expanses of uninhabited land, a few scattered farm houses, and a small village with closely packed houses at its center.

Atoms are the basic units of matter and the defining structure of element. Atoms are made up of three particles: protons, neutrons and electrons.
Protons and neutrons are heavier than electrons and reside in the center of the atom, which is called the nucleus. Electrons are extremely lightweight and exist in a cloud orbiting the nucleus. The electron cloud has a radius 10,000 times greater than the nucleus.
Protons and neutrons have approximately the same mass. However, one proton weighs more than 1,800 electrons. Atoms always have an equal number of protons and electrons, and the number of protons and neutrons is usually the same as well. Adding a proton to an atom makes a new element, while adding a neutron makes an isotope, or heavier version, of that atom.
Electron
1. Electrons are present outside the nucleus of an atom. 
2. Electrons are negatively charged. 
3. The mass of an electron is considered to negligible.
Proton 
1. Protons are present in the nucleus of an atom. 
2. Protons are positively charged. 
3. The mass of a proton is approximately 2000 times as the mass of an electron.
Neutron
1. Neutrons are present in the nucleus of an atom. 
2. Neutrons are neutral. 
3. The mass of neutron is nearly equal to the mass of a proton.


SOURCE : http://chemwiki.ucdavis.edu/
The Bohr model is outdated, but it depicts the three basic subatomic particles in a comprehensible way. Electron clouds are more accurate representations of where electrons are found. Darker areas represent where the electrons are more likely to be found, and lighter areas represent where they are less likely to be found.
Picture2.png



Particle
Mass (gram)
Charge (Coulomb)
Charge (units)
Electron (e)
9.1 x 10-28
-1.6 x 10-19
-1
Proton (p)
1.67 x 10-27
+1.6 x 10-19
+1
Neutron(n)
1.67 x 10-27
0
0
  • The positive charge of protons cancels the negative charge of the electrons. Neutrons have no charge.
  • With regard to mass, protons and neutrons are very similar, and have a much greater mass than electrons. Compared with neutrons and protons, the mass of an electron is usually negligible. 
Protons
Protons were discovered by Ernest Rutherford in the year 1919, when he performed his gold foil experiment. He projected alpha particles (helium nuclei) at gold foil, and the positive alpha particles were deflected. He concluded that protons exist in a nucleus and have a positive nuclear charge. The atomic number or proton number is the number of protons present in an atom. The atomic number determines an element (e.g., the element of atomic number 6 is carbon). 

Electrons
Electrons were discovered by Sir John Joseph Thomson in 1897. After many experiments involving cathode rays, J.J. Thomson demonstrated the ratio of mass to electric charge of cathode rays. He confirmed that cathode rays are fundamental particles that are negatively-charged; these cathode rays became known as electrons. 
Electrons are located in an electron cloud, which is the area surrounding the nucleus of the atom. There is usually a higher probability of finding an electron closer to to the nucleus of an atom. Electrons can abbreviated as e-. Electrons have a negative charge that is equal in magnitude to the positive charge of the protons. However, their mass is considerably less than that of a proton or neutron (and as such is usually considered insignificant). Unequal amounts of protons and electrons create ions: positive cations or negative anions.

Neutrons
Neutrons were discovered by James Chadwick in 1932, when he demonstrated that penetrating radiation incorporated beams of neutral particles. Neutrons are located in the nucleus with the protons. Along with protons, they make up almost all of the mass of the atom. The number of neutrons is called the neutron number and can be found by subtracting the proton number from the atomic mass number. The neutrons in an element determine the isotope of an atom, and often its stability. The number of neutrons is not necessarily equal to the number of protons.

Different ElementsDifferent Numbers of Protons, Electron & Neutron


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HISTORY OF ATOM






















































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***EXRTA...INFO...


Protons and neutrons were each discovered to be made of elementary particles called “quarks.” The two most common types of quarks are called up and down, and come in three varieties (called red, green, and blue). When you add in the electron and the electron neutrino, you get a family of eight elementary particles. All of the atoms in the periodic table can be explained with just those eight particles. That’s a lot simpler than 117!


Timeline of particle discoveries

From Wikipedia, the free encyclopedia
This is a timeline of subatomic particle discoveries, including all particles thus far discovered which appear to beelementary (that is, indivisible) given the best available evidence. It also includes the discovery of composite particles andantiparticles that were of particular historical importance.
More specifically, the inclusion criteria are:
  • Elementary particles from the Standard Model of particle physics that have so far been observed. The Standard Model is the most comprehensive existing model of particle behavior. All Standard Model particles including the Higgs boson have been verified, and all other observed particles are combinations of two or more Standard Model particles.
  • Antiparticles which were historically important to the development of particle physics, specifically the positron andantiproton. The discovery of these particles required very different experimental methods from that of their ordinary matter counterparts, and provided evidence that all particles had antiparticles—an idea that is fundamental to quantum field theory, the modern mathematical framework for particle physics. In the case of most subsequent particle discoveries, the particle and its anti-particle were discovered essentially simultaneously.
  • Composite particles which were the first particle discovered containing a particular elementary constituent, or whose discovery was critical to the understanding of particle physics.
TimeEvent
1800William Herschel discovers "heat rays"
1801Johann Wilhelm Ritter made the hallmark observation that invisible rays just beyond the violet end of the visible spectrum were especially effective at lightening silver chloride-soaked paper. He called them "oxidizing rays" to emphasize chemical reactivity and to distinguish them from "heat rays" at the other end of the invisible spectrum (both of which were later determined to be photons). The more general term "chemical rays" was adopted shortly thereafter to describe the oxidizing rays, and it remained popular throughout the 19th century. The terms chemical and heat rays were eventually dropped in favor of ultraviolet and infrared radiation, respectively.[1]
1895Discovery of the ultraviolet radiation below 200 nm, named vacuum ultraviolet (later identified as photons) because it is strongly absorbed by air, by the German physicist Victor Schumann[2]
1895X-ray produced by Wilhelm Röntgen (later identified as photons)[3]
1897Electron discovered by J. J. Thomson[4]
1899Alpha particle discovered by Ernest Rutherford in uranium radiation[5]
1900Gamma ray (a high-energy photon) discovered by Paul Villard in uranium decay[6]
1911Atomic nucleus identified by Ernest Rutherford, based on scattering observed by Hans Geiger and Ernest Marsden[7]
1919Proton discovered by Ernest Rutherford[8]
1932Neutron discovered by James Chadwick[9] (predicted by Rutherford in 1920[10])
1932Antielectron (or positron), the first antiparticle, discovered by Carl D. Anderson[11] (proposed by Paul Dirac in 1927 and by Ettore Majorana in 1928)
1937Muon (or mu lepton) discovered by Seth Neddermeyer, Carl D. Anderson, J.C. Street, and E.C. Stevenson, usingcloud chamber measurements of cosmic rays[12] (it was mistaken for the pion until 1947[13])
1947Pion (or pi meson) discovered by C. F. Powell's group (predicted by Hideki Yukawa in 1935[14])
1947Kaon (or K meson), the first strange particle, discovered by George Dixon Rochester and Clifford Charles Butler[15]
1947Λ0 discovered during a study of cosmic-ray interactions[16]
1955Antiproton discovered by Owen ChamberlainEmilio SegrèClyde Wiegand, and Thomas Ypsilantis[17]
1956Electron antineutrino detected by Frederick Reines and Clyde Cowan (proposed by Wolfgang Pauli in 1930 to explain the apparent violation of energy conservation in beta decay)[18] At the time it was simply referred to asneutrino since there was only one known neutrino.
1962Muon neutrino (or mu neutrino) shown to be distinct from the electron neutrino by a group headed by Leon Lederman[19]
1964Xi baryon discovery at Brookhaven National Laboratory[20]
1969Partons (internal constituents of hadrons) observed in deep inelastic scattering experiments between protons andelectrons at SLAC;[21][22] this was eventually associated with the quark model (predicted by Murray Gell-Mann andGeorge Zweig in 1964) and thus constitutes the discovery of the up quarkdown quark, and strange quark.
1974J/ψ meson discovered by groups headed by Burton Richter and Samuel Ting, demonstrating the existence of thecharm quark[23][24] (proposed by James Bjorken and Sheldon Lee Glashow in 1964[25])
1975Tau discovered by a group headed by Martin Perl[26]
1977Upsilon meson discovered at Fermilab, demonstrating the existence of the bottom quark[27] (proposed byKobayashi and Maskawa in 1973)
1979Gluon observed indirectly in three-jet events at DESY[28]
1983W and Z bosons discovered by Carlo RubbiaSimon van der Meer, and the CERN UA1 collaboration[29][30](predicted in detail by Sheldon GlashowMohammad Abdus Salam, and Steven Weinberg)
1995Top quark discovered at Fermilab[31][32]
1995Antihydrogen produced and measured by the LEAR experiment at CERN[33]
2000Tau neutrino first observed directly at Fermilab[34]
2011Antihelium-4 produced and measured by the STAR detector; the first particle to be discovered by the experiment
2012A particle exhibiting most of the predicted characteristics of the Higgs boson discovered by researchers conducting the Compact Muon Solenoid and ATLAS experiments at CERN's Large Hadron Collider[35]

See also[edit]




Tuesday, June 16, 2015

C1.1-E3 : Chemical Changes VS Physical Changes

Changes
Highlight to reveal Answer
glass breaking
Physical
hammering wood together to build a house
Physical
a rusting bicycle 
Chemical
melting butter for popcorn 
Physical
separating sand from gravel 
Physical
spoiling food 
Chemical
mixing lemonade powder into water 
Physical
mowing the lawn 
Physical
corroding metal
Chemical
bleaching your hair 
Chemical
fireworks exploding 
Chemical
squeezing oranges to make orange juice 
Physical
frying an egg 
Chemical
pouring milk on your oatmeal 
Physical
burning leaves 
Chemical
making salt water to gargle with 
Physical
cream being whipped 
Physical
burning toast 
Chemical
freezing chocolate covered bananas 
Physical
melting ice cream 
Physical
Drying clothes 
Physical
Heating a metal until it is red hot 
Physical
Distillation of alcohol 
Physical
Gasoline evaporating 
Physical
Sugar dissolves in water 
Physical
Digesting food 
Chemical
Charcoal burns leaving ashes 
Chemical
Paper ignites when placed in a flame 
Chemical



C1 : 1.1-Chemical Changes VS Physical Changes



Chemical change is any change that results in the formation of new chemical substances. At the molecular level, chemical change involves making or breaking of bonds between atoms.

Physical change rearranges molecules but doesn't affect their internal structures.

























Monday, June 15, 2015

C1.1-E2 : STATES OF MATTER



















































Chapter 1 : 1.1-Changing States Of Matter



Molecules can move from one physical state to another and not change their basic structure. Oxygen (O2) as a gas has the same chemical properties as liquid oxygen. The liquid state is colder and denser, but the molecules (the basic parts) are still the same. Water (H2O) is another example. A water molecule is made up of two hydrogen (H) atoms and one oxygen (O) atom. It has the same molecular structure whether it is a gasliquid, or solid. Although its physical state may change, its chemical state remains the same.


Changes of Phase

Water vapor turning to frost is an example of deposition
Deposition Leaves
There are four states of matter in the universe: plasma, gas, liquid and solid. But matter on Earth exists mostly in three distinct phases: gas, liquid and solid. A phase is a distinctive form of a substance, and matter can change among the phases. It may take extreme temperature, pressure or energy, but all matter can be changed.
There are six distinct changes of phase which happens to different substances at different temperatures. The six changes are:
  • Freezing: the substance changes from a liquid to a solid.
  • Melting: the substance changes back from the solid to the liquid.
  • Condensation: the substance changes from a gas to a liquid.
  • Vaporization: the substance changes from a liquid to a gas.
  • Sublimation: the substance changes directly from a solid to a gas without going through the liquid phase.
  • Deposition: the substance changes directly from a gas to a solid without going through the liquid phase.

Examples of Phase Change

I'm sure you know what most of these phases look like. Freezing is when liquid water freezes into ice cubes. Melting is when those ice cubes melt. Condensation is when dew forms on grass in the morning. Vaporization is when water boils and turns into steam. Deposition is one you may not know, but this happens when water vapor goes directly to freezing, like when there is frost on a cold winter morning. An example of sublimation happens when dry ice turns directly into gas. Gas can also change into a plasma. In order to do this you have to add an enormous amount of energy to the gas in order to free up the electrons from the atoms.