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Matter, Measurement, and Atomic Structure: General Chemistry Study Notes

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Matter and Its Classification

Definition and States of Matter

Matter is defined as anything that has mass and occupies space. It exists in three primary physical states:

  • Solid: Has a definite shape and volume; particles are closely packed in a fixed arrangement.

  • Liquid: Has a definite volume but takes the shape of its container; particles are close but can move past one another.

  • Gas: Has neither a definite shape nor volume; particles are far apart and move freely.

Classification of Matter

  • Pure Substance: Matter with a fixed composition and distinct properties. Examples include elements and compounds.

  • Element: A pure substance that cannot be broken down into simpler substances by chemical means. Examples: Oxygen (O2), Gold (Au).

  • Compound: A substance composed of two or more elements chemically combined in fixed proportions. Examples: Water (H2O), Carbon Dioxide (CO2).

Example: Table salt (NaCl) is a compound, while iron (Fe) is an element.

Atomic Structure and the Periodic Table

Structure of the Atom

Atoms are the basic units of matter, composed of three fundamental particles:

  • Protons: Positively charged particles located in the nucleus.

  • Neutrons: Neutral particles (no charge) also located in the nucleus.

  • Electrons: Negatively charged particles that orbit the nucleus in electron clouds or shells.

The nucleus contains most of the atom's mass, while electrons occupy most of its volume.

The Periodic Table

  • Elements are organized by atomic number (number of protons) in the periodic table.

  • The periodic table groups elements with similar chemical properties into columns called groups or families.

Example: Hydrogen (H) has atomic number 1; Carbon (C) has atomic number 6.

Chemical Bonding

Ionic and Covalent Bonds

Chemical bonds are forces that hold atoms together in compounds. The two main types are:

  • Ionic Bonds: Formed when electrons are transferred from a metal to a nonmetal, resulting in oppositely charged ions that attract each other.

  • Covalent Bonds: Formed when two atoms (usually nonmetals) share one or more pairs of electrons.

Example: Sodium chloride (NaCl) is formed by ionic bonding; water (H2O) is formed by covalent bonding.

Measurement in Chemistry

SI Units

The International System of Units (SI) is the standard for scientific measurements. Key SI base units include:

  • Meter (m): Length

  • Kilogram (kg): Mass

  • Second (s): Time

  • Kelvin (K): Temperature

  • Mole (mol): Amount of substance

Significant Figures

Significant figures indicate the precision of a measured quantity. The number of significant figures in a measurement includes all certain digits plus the first uncertain digit.

  • When performing calculations, the result should be reported with the correct number of significant figures based on the input values.

Example: 2.50 g has three significant figures; 0.00420 mL has three significant figures.

Density

Density is a physical property defined as mass per unit volume. It is commonly used to identify substances and assess purity.

  • Formula:

  • Where d is density, m is mass, and V is volume.

Example: If a sample has a mass of 10.0 g and a volume of 2.00 mL, its density is .

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