CHEM 1A Lecture Notes - Lecture 1: Atomic Mass, Unified Atomic Mass Unit, Carbon-12

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2 Oct 2016
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CHEM 1A Full Course Notes
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CHEM 1A Full Course Notes
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Amount of substance - mole - mol. Gram is not a si unit, it"s kilograms. 1 ml = 10^-3 l = 10^-3 dm^3 = 1cm^3. The si unit is kg/m^3 but g/ml is more commonly used in chem. Ex: the density of gold is 19. 3 g/ml calculate the mass of 15. 0 cm^3 of gold. M= 289. 5g but with significant figures you round up to 290. grams. 1 cg= 10^-2 g = 10^-5 kg. 0. 843 cg x 10^-5kg x 2. 2046 lb/ 1kg = 1. 8584778 x 10^-5. With three sig figs, 1. 86 x 10^-5 lb. 1 fm^2 = (1000)^2 am^2 = 1x10^6 am^2. 1 km = (1000)^3 m^3 = 1x 10^9 m^3. 1 microliter = 1x 10^-6 = 1x 10^-6 dm^3 = 1x 10^-9 m^3. 1 km^3 = (1x10^9)^2 = 1 x10^18 microliter. 7. 59 microliter = 7. 59 x 10^-18 km. Rutherford"s gold foil experiment found a nucleus with a positive charge. It"s about 1840 times as heavy as an electron.

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