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MYP 10 PeriodicityWS
MYP 10 PeriodicityWS

... 5(a) Draw a diagram to show the structure of sodium chloride. Explain, in terms of bonding, why sodium chloride has a high melting point. (b) Lithium reacts with water. Write an equation for the reaction and state two observations that could be made during the reaction. [SL paper 2, Nov 05] 6 (a) Fo ...
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ORGANIC CHEMISTRY - Alex Science Department
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... 73.An open flask contains 0.200 mol of air. Atmospheric pressure is 745 mmHg and room temperature is 68˚F. How many moles are present in the flask when the pressure is 1.10 atm and the temperature is 33˚C? 74.On a warm day, an amusement park balloon is filled with 47.8 g He. The temperature is 33˚C ...
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... join together when the double bond is broken and the monomers join together. The number of monomers involved range from 100 to 100,000. Such a process requires a catalyst or initiator to start the process. Production of Polyethylene When liquid ethylene is heated in the presence of a catalyst, the m ...
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... The Optimal TPCP Ligand for 2º Unactivated C–H Bond Functionalization  The Davies Group synthesized a variety of TPCP ligands and found the optimal catalyst was Rh2[R-3,5-di(p-tBuC6H4)TPCP]4  Provided the highest selectivity for ...
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... aldehyde may be structural isomers with different properties, as is the case for acetone and propanal. ...
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Physical organic chemistry

Physical organic chemistry, a term coined by Louis Hammett in 1940, refers to a discipline of organic chemistry that focuses on the relationship between chemical structures and reactivity, in particular, applying experimental tools of physical chemistry to the study of organic molecules. Specific focal points of study include the rates of organic reactions, the relative chemical stabilities of the starting materials, reactive intermediates, transition states, and products of chemical reactions, and non-covalent aspects of solvation and molecular interactions that influence chemical reactivity. Such studies provide theoretical and practical frameworks to understand how changes in structure in solution or solid-state contexts impact reaction mechanism and rate for each organic reaction of interest. Physical organic chemists use theoretical and experimental approaches work to understand these foundational problems in organic chemistry, including classical and statistical thermodynamic calculations, quantum mechanical theory and computational chemistry, as well as experimental spectroscopy (e.g., NMR), spectrometry (e.g., MS), and crystallography approaches. The field therefore has applications to a wide variety of more specialized fields, including electro- and photochemistry, polymer and supramolecular chemistry, and bioorganic chemistry, enzymology, and chemical biology, as well as to commercial enterprises involving process chemistry, chemical engineering, materials science and nanotechnology, and drug discovery.
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