
Public learning track
Solubility Rules, Molarity, and Solution Dilutions
10th Grade · Science · TEKS
8 lessons
Goal
Apply solubility rules to predict precipitate formation in double replacement reactions, calculate solution concentrations in molarity, and solve solution dilution problems using M1V1 = M2V2.
Featured Diagrams
Solubility Rules for Common Ionic Compounds
8 lessons
0 of 8 done
- 1Solubility Rules for Common Ionic CompoundsUp nextStart
- 2Predicting Solubility and Precipitate Formation in Double Replacement ReactionsPremiumNot started yet
- 3Writing Complete and Net Ionic EquationsNot started yet
- 4Understanding and Calculating Molarity of SolutionsNot started yet
- 5Calculating Solute Mass Required for a Given MolarityNot started yet
- 6Calculating Ion Concentrations in Aqueous SolutionsNot started yet
- 7Understanding the Dilution Concept and M1V1 = M2V2 EquationNot started yet
- 8Multi-Step Dilution Calculations and Solution PreparationNot started yet
Standards Covered
- 112.43(b)(11)(D)Texas Essential Knowledge and Skills (TEKS) · Science · 10th grade · Grade 10investigate the general rules regarding solubility and predict the solubility of the products of a double replacement reaction;
- 112.43(b)(11)(E)Texas Essential Knowledge and Skills (TEKS) · Science · 10th grade · Grade 10calculate the concentration of solutions in units of molarity; and
- 112.43(b)(11)(F)Texas Essential Knowledge and Skills (TEKS) · Science · 10th grade · Grade 10calculate the dilutions of solutions using molarity.
Curriculum Framework
10th Grade · Science · TEKS
1
8 lessons
Scientific Practices and Laboratory Investigations
Master laboratory safety, scientific inquiry practices, equipment usage, and the evaluation of scientific models and theories.
2
7 lessons
Cellular Energetics: Photosynthesis and Cellular Respiration
Explain how matter is conserved and energy is transferred during photosynthesis and cellular respiration using chemical equations and models.
3
8 lessons
Enzymes and Cellular Regulation
Investigate and explain how enzymes lower activation energy and catalyze cellular metabolic reactions under varying conditions.
4
7 lessons
Animal Body Systems and Interactivity
Analyze how animal body systems interact to maintain homeostasis, absorb nutrients, reproduce, and defend against injury or disease.
5
7 lessons
Plant Structure and System Interactions
Explain how plant vascular, reproductive, and response systems interact to carry out essential biological functions.
6
7 lessons
Ecological Relationships and Ecosystem Stability
Investigate and evaluate how ecological relationships influence ecological community structure and overall ecosystem stability.
7
7 lessons
Matter Cycling and Energy Flow in Ecosystems
Analyze how disruptions to matter cycling and energy transfer through trophic levels affect overall ecosystem stability.
8
7 lessons
Biogeochemical Cycles: Carbon and Nitrogen
Explain the significance of carbon and nitrogen cycles to ecosystem stability and analyze the ecological consequences of cycle disruptions.
9
7 lessons
Environmental Change, Biodiversity, and Conservation
Explain how natural and anthropogenic environmental changes affect biodiversity and assess their impacts on ecosystem stability.
10
7 lessons
Foundations of Chemistry: Atomic Structure and Isotopes
Understand atomic theory development, subatomic particle arrangements, isotopic variations, and atomic mass calculations.
11
8 lessons
Electron Configurations and Periodic Trends
Master quantum sublevels, ground-state electron configurations, and predictive trends across the periodic table.
12
9 lessons
Chemical Bonding and Molecular Structure
Form ionic, covalent, and metallic bonds, construct nomenclature, draw Lewis structures, and determine molecular geometries.
13
9 lessons
The Mole Concept and Stoichiometry
Master mole conversions, molar mass calculations, stoichiometry, limiting reactants, and percent yield determinations.
14
7 lessons
Chemical Reactions and Kinetics
Classify chemical reactions, balance chemical equations, graph energy profiles, and evaluate reaction kinetics.
15
7 lessons
Solutions, Gas Laws, and Acid-Base Chemistry
Understand solution molarity, gas behaviors under kinetic molecular theory, and acid-base neutralization reactions.
16
8 lessons
Nuclear Chemistry and Society
Understand radioactive decay, half-life calculations, nuclear fission/fusion, and evaluate nuclear technology applications.
17
3 lessons
STEM Careers and Scientific Inquiry Resources
Explore STEM career pathways, research organizations, and real-world scientific mentorship opportunities.
18
8 lessons
Development of Atomic Theory and Nuclear Models
Trace the historical evolution of atomic theory and model atomic structure, subatomic particles, and isotopic composition.
19
6 lessons
Electromagnetic Spectrum, Quantum Theory, and Electron Architecture
Quantify light energy and wave relationships and represent electron architecture through electron configurations and Lewis structures.
20
7 lessons
The Periodic Table: Historical Development and Periodic Trends
Explain the historical evolution of the periodic table, predict family properties from valence electrons, and analyze trends in atomic properties.
21
8 lessons
Chemical Bonding, IUPAC Nomenclature, and Molecular Geometry
Name and write chemical formulas, model VSEPR geometries, and evaluate intramolecular and intermolecular properties.
22
8 lessons
Moles, Mass Relationships, and Chemical Composition
Apply Avogadro's number, convert between mass, moles, and particles, calculate percent composition, and derive empirical and molecular formulas.
23
10 lessons
Chemical Reactions, Reaction Types, and Stoichiometry
Balance chemical equations across five primary reaction types, classify aqueous reactions, and solve stoichiometry, limiting reactant, and percent yield problems.
24
7 lessons
Kinetic Molecular Theory, Gas Laws, and Solution Dynamics
Describe gas behavior using Kinetic Molecular Theory, perform ideal gas law and partial pressure calculations, and analyze solubility curves and dissolution factors.
25
8 lessons
Solubility Rules, Molarity, and Solution Dilutions
Apply solubility rules to predict precipitate formation in double replacement reactions, calculate solution concentrations in molarity, and solve solution dilution problems using M1V1 = M2V2.
26
8 lessons
Acids, Bases, pH, and Neutralization Reactions
Differentiate strong vs. weak acids and bases, predict products in water-forming acid-base neutralization reactions, define pH, and calculate pH from hydrogen ion concentration.