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Introduction to Chemistry: Scientific Method, Measurement, Matter, Atomic Structure, and Electrons

스터디 가이드 - 스마트 노트

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Chapter 1: Scientific Method & Graphs

Scientific Method

The scientific method is a systematic approach used by scientists to explore observations, answer questions, and solve problems. It involves several key steps and concepts:

  • Observation: Gathering information through the senses or instruments.

  • Hypothesis: A testable, tentative explanation for an observation.

  • Law: A statement that summarizes a pattern found in nature, often expressed mathematically.

  • Theory: A well-substantiated explanation of some aspect of the natural world that can incorporate laws, hypotheses, and facts.

Example: The Law of Conservation of Mass states that mass is neither created nor destroyed in a chemical reaction.

Graph Interpretation

Graphs are essential tools for visualizing data and relationships between variables.

  • Independent Variable: The variable that is changed or controlled in an experiment (plotted on the x-axis).

  • Dependent Variable: The variable being tested and measured (plotted on the y-axis).

Example: In a graph of temperature (x-axis) vs. solubility (y-axis), temperature is the independent variable.

Pattern Recognition

Recognizing patterns in data helps identify relationships between variables:

  • Direct Relationship: As one variable increases, the other also increases.

  • Inverse Relationship: As one variable increases, the other decreases.

Example: The pressure and volume of a gas at constant temperature are inversely related (Boyle's Law).

Chapter 2: Math & Measurements

Scientific Notation

Scientific notation expresses very large or small numbers as a product of a number between 1 and 10 and a power of ten.

  • Example: 0.00045 =

Significant Figures (Sig Figs)

  • Identification: All nonzero digits are significant; zeros between nonzero digits are significant; leading zeros are not significant; trailing zeros are significant only if there is a decimal point.

  • Rounding Rules: Round to the correct number of significant figures based on the operation performed.

  • Multiplication/Division: The result should have as many significant figures as the measurement with the fewest significant figures.

  • Addition/Subtraction: The result should have as many decimal places as the measurement with the fewest decimal places.

Example: (rounded to 2 sig figs)

Dimensional Analysis

Dimensional analysis uses conversion factors to systematically convert units.

  • Complex Unit Conversion: Includes converting squared, cubed, or fractional units.

Example: To convert 5.0 cm3 to mL, use .

Density

  • Formula: , where D is density, m is mass, and V is volume.

  • Density as a Conversion Factor: Used to convert between mass and volume.

Example: If the density of a substance is and the mass is 10 g, the volume is .

Chapter 3: Matter & Energy

Matter Classification

Matter can be classified based on its composition:

  • Element: A pure substance made of only one kind of atom.

  • Compound: A substance made of two or more elements chemically combined.

  • Homogeneous Mixture (Solution): Uniform composition throughout.

  • Heterogeneous Mixture: Non-uniform composition; different parts are visible.

Example: Salt water is a homogeneous mixture; sand and iron filings are a heterogeneous mixture.

Physical vs. Chemical Properties

  • Physical Properties: Can be observed without changing the substance's composition (e.g., color, melting point, density).

  • Chemical Properties: Describe a substance's ability to undergo chemical changes (e.g., flammability, reactivity).

  • Intensive Properties: Do not depend on the amount of matter (e.g., density, boiling point).

  • Extensive Properties: Depend on the amount of matter (e.g., mass, volume).

Physical vs. Chemical Changes

  • Physical Change: Alters the form or appearance but not the composition (e.g., melting, freezing).

  • Chemical Change: Alters the composition, producing new substances (e.g., rusting, burning).

Conservation of Mass

The Law of Conservation of Mass states that mass is neither created nor destroyed in a chemical reaction.

  • Equation:

Temperature Scales

  • Fahrenheit (°F), Celsius (°C), Kelvin (K): Common temperature scales in chemistry.

  • Conversions:

Energy Units

  • Joule (J): SI unit of energy.

  • calorie (cal): Energy needed to raise 1 g of water by 1°C.

  • Calorie (Cal): 1 Cal = 1000 cal (used in food energy).

  • Conversion:

Specific Heat Capacity

  • Formula:

  • Where q = heat (J), m = mass (g), c = specific heat (J/g·°C), = change in temperature (°C).

Example: How much heat is needed to raise 10 g of water by 5°C?

Chapter 4: Atomic Structure

Subatomic Particles

Atoms are composed of three main subatomic particles:

Particle

Symbol

Charge

Mass (amu)

Location

Proton

p+

+1

1

Nucleus

Neutron

n0

0

1

Nucleus

Electron

e-

-1

~0

Outside nucleus

Ion Calculations

  • Ion: An atom or molecule with a net electric charge due to the loss or gain of electrons.

  • Net Charge:

Example: An atom with 11 protons and 10 electrons has a charge of +1 (Na+).

Isotope Notation

  • Isotope: Atoms of the same element with different numbers of neutrons.

  • Notation: , where A = mass number, Z = atomic number, X = element symbol.

Example: is carbon-14.

Atomic Mass Calculations

  • Weighted Average:

Example: If 75% of Cl is Cl (mass = 35 amu) and 25% is Cl (mass = 37 amu): amu

Chapter 9: Electrons & Periodic Trends

Electromagnetic Spectrum

  • Relationship: , where c = speed of light, = wavelength, = frequency.

  • Energy: , where E = energy, h = Planck's constant, = frequency.

Example: As wavelength decreases, frequency and energy increase.

Electron Configuration Principles

  • Aufbau Principle: Electrons fill the lowest energy orbitals first.

  • Pauli Exclusion Principle: Each orbital holds a maximum of two electrons with opposite spins.

  • Hund's Rule: Electrons occupy degenerate orbitals singly before pairing up.

Electron Configurations & Orbital Diagrams

  • Full Configuration: Lists all occupied subshells (e.g., 1s2 2s2 2p6).

  • Shorthand Configuration: Uses the previous noble gas in brackets (e.g., [Ne] 3s2).

  • Orbital Diagrams: Use boxes and arrows to represent electron arrangement in orbitals.

Valence Electrons

  • Valence Electrons: Electrons in the outermost shell, important for chemical bonding.

  • Core Electrons: Electrons in inner shells.

Periodic Trends

Trend

Across a Period (Left to Right)

Down a Group (Top to Bottom)

Atomic Radius

Decreases

Increases

Ionization Energy

Increases

Decreases

Metallic Character

Decreases

Increases

Example: Sodium (Na) has a larger atomic radius than chlorine (Cl) in the same period.

Additional info: Some explanations and examples were expanded for clarity and completeness based on standard introductory chemistry curricula.

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