IndietroGeneral Chemistry Study Guide: Matter, Measurement, and Chemical Formulas
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Chapter 1: Matter and Its Classification
Definition and Classification of Matter
Matter is anything that has mass and occupies space. It can be classified based on its composition and properties.
Pure Substances: Materials with a fixed composition and distinct properties.
Elements: Substances that cannot be broken down into simpler substances by chemical means. Examples: Oxygen (O2), Gold (Au).
Compounds: Substances composed of two or more elements chemically combined in fixed proportions. Examples: Water (H2O), Sodium chloride (NaCl).
Mixtures: Physical combinations of two or more substances where each retains its own properties.
Homogeneous Mixtures (Solutions): Uniform composition throughout. Example: Saltwater.
Heterogeneous Mixtures: Non-uniform composition. Example: Salad, sand in water.
Physical and Chemical Changes
Changes in matter can be classified as physical or chemical.
Physical Change: Alters the form or appearance but not the composition. Examples: Melting ice, dissolving sugar in water.
Chemical Change: Produces new substances with different properties. Examples: Rusting iron, burning wood.
Physical and Chemical Properties
Physical Properties: Can be observed without changing the substance's identity. Examples: Color, melting point, density.
Chemical Properties: Describe a substance's ability to undergo chemical changes. Examples: Flammability, reactivity with acid.
Intensive Properties: Do not depend on the amount of matter. Examples: Density, boiling point.
Extensive Properties: Depend on the amount of matter. Examples: Mass, volume.
SI Units and Measurement
Seven Basic SI Units:
Quantity | Unit | Symbol |
|---|---|---|
Length | meter | m |
Mass | kilogram | kg |
Time | second | s |
Temperature | kelvin | K |
Amount of substance | mole | mol |
Electric current | ampere | A |
Luminous intensity | candela | cd |
Temperature Conversions
To convert between Celsius, Fahrenheit, and Kelvin:
Metric Conversions and Factor-Label Method
Use conversion factors to convert between units.
Example: To convert 5.0 cm to meters:
Density
Density is the mass per unit volume of a substance.
Formula:
Example: If a block has a mass of 10 g and a volume of 2 cm3, its density is .
Significant Figures and Scientific Notation
Significant Figures: Digits in a measurement that are known with certainty plus one estimated digit.
Scientific Notation: Expresses numbers as a product of a number between 1 and 10 and a power of 10. Example:
Chapter 2 & 3: Atomic Structure, Periodic Table, and Chemical Formulas
Periodic Table Organization
The periodic table arranges elements by increasing atomic number (number of protons). Historically, it was first organized by atomic mass.
Groups (columns): Elements with similar chemical properties.
Periods (rows): Elements with the same number of electron shells.
Families of Elements
Alkali Metals (Group 1): Highly reactive, soft metals (e.g., Na, K).
Alkaline Earth Metals (Group 2): Reactive metals, harder than alkali metals (e.g., Mg, Ca).
Transition Metals (Groups 3-12): Metals with variable oxidation states (e.g., Fe, Cu).
Halogens (Group 17): Very reactive nonmetals (e.g., Cl, F).
Noble Gases (Group 18): Inert gases, very low reactivity (e.g., He, Ne).
Metals, Nonmetals, and Metalloids
Metals: Good conductors, malleable, ductile, shiny; found on the left and center of the table.
Nonmetals: Poor conductors, brittle, dull; found on the right side.
Metalloids: Properties intermediate between metals and nonmetals; found along the staircase line (e.g., Si, B).
Writing and Naming Chemical Compounds
Ionic Compounds: Formed from metals and nonmetals. Name: cation + anion (e.g., NaCl: sodium chloride).
Molecular Compounds: Formed from nonmetals. Use prefixes (e.g., CO2: carbon dioxide).
Binary Compounds: Contain two elements (e.g., HCl).
Ternary Compounds: Contain three elements, often with polyatomic ions (e.g., NaNO3).
Transition Metal Compounds: Indicate charge with Roman numerals (e.g., FeCl2: iron(II) chloride).
Polyatomic Ions
Common polyatomic ions and their charges:
Ion | Formula | Charge |
|---|---|---|
Ammonium | NH4+ | +1 |
Nitrate | NO3- | -1 |
Sulfate | SO42- | -2 |
Carbonate | CO32- | -2 |
Phosphate | PO43- | -3 |
Hydroxide | OH- | -1 |
Percent Composition
Percent composition is the percent by mass of each element in a compound.
Formula:
Example: In H2O, %H =
Hydrates: Formulas and Naming
Hydrates are compounds with water molecules attached.
Named as: [compound name] + prefix-hydrate (e.g., CuSO4·5H2O: copper(II) sulfate pentahydrate).
To find the formula, determine the ratio of moles of water to moles of compound.
Counting Atoms in a Formula
Multiply the subscript of each element by the number of formula units or molecules.
Example: In Al2(SO4)3, there are 2 Al, 3 × 1 S = 3 S, and 3 × 4 O = 12 O atoms.
Gram Formula Mass (GFM) or Molar Mass (MM)
The mass of one mole of a substance, in grams per mole (g/mol).
Calculated by summing the atomic masses of all atoms in the formula.
Example: NaCl: Na (22.99) + Cl (35.45) = 58.44 g/mol.
The Mole Concept
One mole contains Avogadro's number of particles: .
1 mole of a gas at STP occupies 22.4 L.
Conversions:
Grams to moles:
Moles to particles:
Moles to volume (gas at STP):
Mole-to-Mole and Mass-to-Mass Ratios
Use the subscripts in a chemical formula to determine the ratio of moles of each element.
Mass ratios can be found by multiplying the mole ratio by the molar masses.
Empirical and Molecular Formulas
Empirical Formula: Simplest whole-number ratio of atoms in a compound.
Molecular Formula: Actual number of atoms of each element in a molecule.
To determine empirical formula from percent composition:
Convert percentages to grams (assume 100 g sample).
Convert grams to moles for each element.
Divide by the smallest number of moles to get the simplest ratio.
To find molecular formula: , where
Additional info: Some explanations and examples have been expanded for clarity and completeness.