English:Ionic, Covalent, and Metallic Bonding

Ionic, Covalent, and Metallic Bonding
Introduction
Chemical bonding explains why atoms form stable substances and why different materials have such different properties. In this aiMOOC for Grades 11–13, you will compare three major bonding models: ionic bonding, covalent bonding, and metallic bonding. You will connect electron behavior to structure, energy, electrical conductivity, melting behavior, brittleness, malleability, polarity, and material design.
A chemical bond is not simply a label placed between two atoms. It is a model for a lower-energy arrangement of nuclei and electrons in which attractive electrostatic interactions outweigh destabilizing repulsions at an equilibrium separation. The three bonding types are useful models, but real bonding forms a continuum. Many substances have mixed bonding character, and advanced explanations often use electron density, molecular orbitals, or energy bands.
Learning goals: By the end of the course, you should be able to explain how each bonding model treats valence electrons, predict likely bonding from composition and electronegativity, interpret structures, connect microscopic bonding to macroscopic properties, evaluate the limits of simple bonding categories, and apply bonding ideas to unfamiliar materials.
The electronegativity pattern across the periodic table is one useful clue when predicting bond polarity and likely bonding character. Electronegativity generally increases across a period and decreases down a group, although bonding classification should never be based on one numerical cutoff alone.
This Crash Course overview introduces ionic and covalent bonding and emphasizes the energetic basis of chemical bonds. Use it as a first comparison, then refine the simplified models in the sections below.
Foundations: Electrons, Energy, and Electrostatic Attraction
Valence Electrons and Electron Configurations
Valence electrons are the outer electrons most directly involved in chemical bonding. For main-group elements, periodic position often helps you predict how many valence electrons an atom has. Lewis symbols represent these electrons as dots around element symbols and are especially useful for simple ionic and covalent models.
Atoms do not bond because they are consciously trying to obtain an octet. The octet rule is a useful pattern for many main-group compounds, but the deeper reason stable bonded structures form is energetic: the total arrangement of nuclei and electrons can reach a lower energy than separated particles. There are important octet-rule exceptions, including electron-deficient molecules, odd-electron species, and expanded-valence descriptions for some heavier main-group compounds.
Electronegativity and Bond Polarity
Electronegativity describes an atom's tendency to attract shared electron density in a bond. When two bonded atoms have similar electronegativities, a covalent bond is often relatively nonpolar. When their electronegativities differ, electron density shifts toward the more electronegative atom and the bond becomes polar covalent. Very large differences often correspond to strong ionic character, especially in extended solids containing cations and anions.
Do not treat a single electronegativity difference as an absolute border between ionic and covalent bonding. Bonding is better understood as a continuum. The environment, oxidation state, polarization of ions, crystal structure, and the atoms involved all influence the actual distribution of electron density.
Attractive and Repulsive Interactions
Bond formation involves competing interactions. Nuclei repel other nuclei, electrons repel other electrons, and negatively charged electrons are attracted to positively charged nuclei. At very large separation the atoms interact weakly. As they approach, attraction can lower the energy. If they come too close, repulsion rises sharply. The stable bond distance is near an energy minimum.
For ions, a simple Coulombic model predicts that electrostatic interaction becomes stronger when ionic charges are larger and the separation between charges is smaller. This helps explain why ions with higher charges and smaller radii often produce solids with larger lattice energies.
Ionic Bonding
From Electron Transfer to an Ionic Lattice
In a simple introductory model, ionic compound formation begins when one atom loses one or more electrons and another gains them. The atom that loses electrons becomes a positively charged cation, while the atom that gains electrons becomes a negatively charged anion. The ionic bond itself is the electrostatic attraction among oppositely charged ions; electron transfer is a way of describing how those ions can form.

The diagram shows electron transfer between lithium and fluorine. After ion formation, electrostatic attraction acts in all directions, so an ionic solid is not best pictured as isolated ion pairs.
For sodium chloride, sodium can form Na+ and chlorine can form Cl−. Charge neutrality requires a 1:1 ratio, giving the empirical formula NaCl. For magnesium chloride, Mg2+ requires two Cl− ions, giving MgCl2. The formula represents the simplest whole-number ratio of ions, not a separate molecule.
This Khan Academy video focuses on the formation of ions and the electrostatic basis of ionic bonding.
Crystal Lattices and Coordination
Ionic solids form extended three-dimensional lattices. Each ion interacts with several nearby ions of opposite charge as well as more distant ions throughout the crystal. In sodium chloride, the familiar rock-salt structure gives each Na+ six nearest-neighbor Cl− ions and each Cl− six nearest-neighbor Na+ ions.

The repeating structure explains why the correct language is formula unit rather than molecule for a simple ionic crystal such as NaCl.
Halite is naturally occurring sodium chloride. Its macroscopic crystal form reflects an ordered ionic lattice, although visible crystal shape also depends on growth conditions and defects.
Lattice Energy and Ionic Bond Strength
Lattice energy describes the energetic stabilization associated with forming an ionic crystal from separated gaseous ions, or in another sign convention the energy required to separate the lattice into gaseous ions. You must check the sign convention used in your course or data table. Regardless of convention, the magnitude of lattice energy generally increases when ionic charge increases and ion size decreases.
A Born–Haber cycle combines Hess's law with ionization energies, electron affinities, atomization or sublimation steps, bond dissociation where needed, and lattice energy. At Grades 11–13, it is useful because it shows that ionic compound formation cannot be understood from electron transfer alone: energy is required to create ions, while strong lattice formation can compensate for that cost.
Properties of Ionic Substances
High melting points are common because many strong electrostatic attractions must be overcome to disrupt an ionic lattice. The exact melting point depends on ion charges, sizes, structure, and other factors.
Brittleness follows from lattice geometry. If layers are displaced so that like-charged ions become adjacent, strong repulsion can cause the crystal to fracture rather than deform smoothly.
Electrical conduction depends on mobility. In a solid ionic lattice, ions are fixed in position and the material is usually a poor electrical conductor. When an ionic substance is molten, mobile ions can carry charge. A dissolved ionic compound can also conduct if it dissociates into mobile ions and is sufficiently soluble.
Solubility is not universal. Many salts dissolve in water, but others are only slightly soluble. Dissolution depends on the balance between lattice interactions and ion-solvent interactions, not simply on whether a compound is ionic.
Covalent Bonding
Shared Electron Density
A covalent bond forms when electron density is shared between atomic nuclei. In a simple Lewis model, one shared electron pair represents a single bond, two shared pairs a double bond, and three shared pairs a triple bond. The electrons are attracted to both nuclei, lowering the energy of the bonded system at an appropriate internuclear distance.
The hydrogen molecule is the simplest example: two hydrogen atoms share a pair of electrons. A Lewis structure is a useful bookkeeping model, but it is not a literal picture of fixed electron dots.
This Khan Academy video connects shared electron pairs, bond polarity, and electronegativity.
Orbital Overlap, Bond Length, and Bond Energy
In valence-bond language, covalent bonding is associated with overlap of atomic orbitals and pairing of electrons with opposite spin. Greater effective overlap can contribute to stronger bonding, but bond strength also depends on the specific atoms, orbitals, bond order, and molecular environment.
A bond has an equilibrium bond length where the total potential energy is minimized. Bond dissociation energy is the energy required to break a particular covalent bond in the gas phase. For the same pair of atoms, multiple bonds are generally shorter and stronger than single bonds, although exact values depend on molecular context.
Polar Covalent Bonds and Molecular Polarity
If bonded atoms differ in electronegativity, the shared electron density is uneven. The more electronegative atom carries a partial negative charge and the other a partial positive charge. This produces a bond dipole.
Molecular polarity depends on both bond polarities and molecular geometry. Individual bond dipoles are vectors, so they can reinforce or cancel. Carbon dioxide has polar C–O bonds but is nonpolar overall in its linear ground-state geometry because the two bond dipoles cancel. Water has polar O–H bonds and a bent geometry, so its bond dipoles do not cancel.

The diagram links molecular shape, lone pairs, partial charges, and the net dipole moment of water.
Molecular Substances Versus Covalent Network Solids
It is essential to separate bond type within particles from forces between particles. A molecular substance can contain strong covalent bonds inside each molecule while still having a low melting point because melting mainly overcomes intermolecular forces, not the covalent bonds within each molecule.
Covalent network solids are different. In diamond, silicon dioxide, and silicon carbide, atoms are connected by extended networks of covalent bonds. Melting or strongly deforming such a solid requires disrupting many strong bonds, so network solids are often hard and have high melting temperatures.

Diamond and graphite are both forms of carbon, yet their structures differ. Diamond has a three-dimensional network of covalent bonds. Graphite consists of covalently bonded sheets with delocalized electrons within the layers and much weaker interactions between layers. This structural difference helps explain why diamond is extremely hard while graphite is soft enough to function as a lubricant and can conduct electricity along its layers.
Lewis Structures, Resonance, and Model Limits
Lewis structures help you count valence electrons, locate bonds and lone pairs, and predict many simple molecular structures. However, some species cannot be represented accurately by one Lewis formula. Resonance uses multiple valid Lewis structures to represent a delocalized electron distribution.
At a more advanced level, molecular orbital theory treats electrons as occupying orbitals that can extend over an entire molecule. This framework explains phenomena that simple localized Lewis bonds cannot fully describe, including the magnetic behavior of oxygen and extensive delocalization in conjugated systems.
This Crash Course video emphasizes that bonding representations are models and develops Lewis structures as one useful representation.
Metallic Bonding
Delocalized Electrons in Metals
Metallic bonding describes the attraction that holds metal atoms together in a condensed metallic structure. A common introductory model pictures positive metal ion cores in a lattice surrounded by mobile, delocalized valence electrons. The electrons are not confined to one pair of atoms.
This "electron sea" model is useful for explaining several bulk properties, but it is still a model. At a more advanced level, band theory describes allowed electron energy bands in a periodic solid and gives a better account of electrical conduction.
This Khan Academy video links delocalized electrons to metallic conductivity and malleability.
Conductivity, Malleability, and Ductility
Electrical conductivity is possible because electrons can respond collectively to an applied electric field. In a simplified band model, metals have available electronic states close in energy, so electrons can change their motion and produce a net current.
Malleability is the ability to deform under compression, while ductility is the ability to be drawn into wires. Metallic bonding is relatively nondirectional, so layers of atoms can shift while the delocalized bonding remains effective. This contrasts with brittle ionic crystals, where displacement can bring like charges next to one another and cause fracture.
Copper is widely used in electrical wiring because it combines high electrical conductivity with ductility and practical mechanical properties.
Metallic Bond Strength and Melting Behavior
Metals do not all have similar melting points. Metallic bond strength varies with electron density, atomic size, crystal structure, and electronic configuration. Alkali metals have comparatively low melting points, while many transition metals melt at much higher temperatures. Therefore, "metallic means high melting point" is too simple.
The diagram gives another simplified view of positive metal centers surrounded by delocalized electrons. Compare it with the band-theory description: the electron-sea model is intuitive, while band theory is more quantitative.
Alloys and Materials Engineering
An alloy contains a metal and one or more additional elements. Substitutional alloys place different atoms on lattice sites, while interstitial alloys place smaller atoms in spaces between host atoms. These changes can hinder dislocation motion and alter hardness, strength, corrosion resistance, conductivity, and melting behavior.
Bonding concepts therefore connect directly to materials science. Choosing copper for wiring, steel for structural beams, silicon for electronics, ceramics for high-temperature applications, or ionic electrolytes for batteries requires understanding how electron behavior and structure create useful macroscopic properties.
Comparing the Three Bonding Models
| Feature | Ionic bonding | Covalent bonding | Metallic bonding |
|---|---|---|---|
| Typical particles | Cations and anions in an extended lattice | Atoms sharing electron density in molecules or networks | Metal atom cores with delocalized electrons in an extended solid |
| Electron model | Electrons are transferred in a simple formation model, then ions attract electrostatically | Electron density is shared between nuclei and may be localized or delocalized | Valence electrons are delocalized across many metal atoms |
| Directionality | Largely nondirectional electrostatic attraction | Often directional because orbital overlap and molecular geometry matter | Relatively nondirectional in the simple metallic model |
| Electrical conduction | Usually poor as a solid; can conduct when molten or when mobile ions are present in solution | Usually poor for molecular and network covalent substances, with important exceptions such as graphite and semiconductors | Usually good because mobile electrons can respond to an electric field |
| Mechanical behavior | Often hard and brittle | Ranges widely; molecular solids may be soft, while network solids can be very hard | Often malleable and ductile |
| Melting behavior | Often high | Often low for molecular substances and high for network solids | Varies widely among metals |
| Representative examples | Sodium chloride, magnesium oxide, calcium fluoride | Hydrogen, water, methane, diamond, silicon dioxide | Copper, aluminum, iron, many alloys |
The table summarizes trends, not absolute rules. Structure matters. Graphite, for example, is a covalent network material with delocalized electrons and electrical conductivity within its layers. Many ceramics contain both ionic and covalent character. Semiconductors challenge a simple "covalent means nonconducting" rule.
A Bonding Continuum Rather Than Three Boxes
Bonding categories are models that emphasize dominant features. A bond can have both covalent and ionic character. Polar covalent bonds are the clearest example: electron density is shared, but unequally. Some compounds commonly taught as ionic have measurable covalent character because cations polarize nearby anions.
Metallic bonding also connects to broader ideas of delocalization. In advanced quantum descriptions, the distinctions among covalent, ionic, and metallic bonding emerge from electron distributions, orbital interactions, energy states, and the periodic structures of solids rather than from three completely separate mechanisms.
For an unfamiliar substance, ask several questions instead of relying on one rule: What particles or atoms are present? Where are the valence electrons? Is the structure molecular or extended? Are charge carriers mobile? What does the electronegativity pattern suggest? What experimental properties support the model?
Predicting Properties from Structure
A Reasoning Strategy
- Composition: Identify whether the elements are metals, nonmetals, or a mixture and note common ionic charges or valence electron counts.
- Electronegativity: Estimate how unevenly bonding electrons are likely to be distributed.
- Structure: Decide whether the material is best represented as discrete molecules, an ionic lattice, a covalent network, or a metallic lattice.
- Charge carrier: Identify whether mobile ions or electrons are available to conduct electricity.
- Energy: Consider the strength and number of interactions that must be disrupted during melting, fracture, or reaction.
- Evidence: Check whether observed properties agree with the proposed model and revise the model if they do not.
Worked Reasoning Examples
Magnesium oxide, MgO: Magnesium commonly forms Mg2+ and oxygen forms O2−. The solid is an ionic lattice. Strong electrostatic attractions between doubly charged ions contribute to a high lattice-energy magnitude and a high melting point. The solid is not expected to conduct well because the ions are not mobile, but molten MgO contains mobile ions.
Methane, CH4: Carbon and hydrogen form covalent bonds in discrete molecules. The molecule is tetrahedral and overall nonpolar. Methane is a gas near room conditions because the intermolecular attractions between small nonpolar molecules are weak compared with the covalent C–H bonds within each molecule.
Diamond: Every carbon atom is covalently bonded in a three-dimensional network. The absence of mobile charge carriers makes diamond a poor electrical conductor, while the strong extended network gives exceptional hardness.
Copper: The atoms form a metallic solid with delocalized electrons. These electrons support high electrical conductivity, while the nondirectional character of metallic bonding helps copper deform without brittle fracture.
Common Misconceptions
Misconception: Ionic bonding is the electron transfer. Electron transfer is a model for ion formation. The bonding interaction in the solid is electrostatic attraction among oppositely charged ions.
Misconception: Ionic compounds consist of molecules. Simple ionic crystals consist of repeating lattices. Their formulas give charge-balanced ratios of ions.
Misconception: Covalent substances always have low melting points. Molecular covalent substances often do, but covalent network solids such as diamond and silicon dioxide can have very high melting temperatures.
Misconception: Metals contain completely free electrons. Delocalized electrons remain part of the quantum-mechanical solid. "Free-electron" or "electron-sea" language is a simplification.
Misconception: One electronegativity cutoff proves the bond type. Electronegativity differences are a guide, not an absolute classification rule.
Misconception: Bond breaking releases energy. Breaking a chemical bond requires energy. Energy is released when new, stronger interactions form and the overall system falls to a lower energy.
Interactive Tasks
Quiz: Test Your Knowledge
What is the main attractive interaction in an ionic solid? (Electrostatic attraction between oppositely charged ions) (!Sharing of one fixed electron pair between every pair of ions) (!Attraction between neutral molecules only) (!Nuclear attraction between neighboring atoms)
Why does solid sodium chloride usually conduct electricity poorly? (Its ions are not free to move through the lattice) (!It contains no charged particles) (!Its electrons are all removed from the crystal) (!Its sodium ions become neutral in the solid)
What best describes a covalent bond? (Shared electron density attracted by two nuclei) (!A lattice made only of positive ions) (!A complete absence of electrostatic forces) (!A transfer of protons between atoms)
What determines whether bond dipoles cancel in a molecule? (The molecular geometry and the directions of the bond dipoles) (!Only the number of atoms in the molecule) (!Only the mass of the central atom) (!Only the physical state of the substance)
Why are many metals good electrical conductors? (Delocalized electrons can respond to an electric field) (!Their positive ions move freely through the solid) (!Every metal atom forms an isolated molecule) (!Their nuclei carry current through empty space)
Why are many ionic crystals brittle? (Displacement can bring like charged ions together and cause repulsion) (!Their ions have no attraction to one another) (!Their lattices contain only neutral particles) (!Their electrons cannot occupy energy levels)
Which statement about covalent network solids is correct? (They contain extended networks of covalent bonds) (!They always consist of separate small molecules) (!They always have very low melting points) (!They conduct electricity in every direction)
What does electronegativity describe? (An atom's tendency to attract shared electron density) (!The number of neutrons in an atomic nucleus) (!The energy released by melting a metal) (!The speed of ions in a crystal lattice)
What is the most accurate statement about bonding categories? (They are useful models and real bonding can show mixed character) (!Every bond is perfectly ionic covalent or metallic) (!Electronegativity alone gives an exact universal classification) (!All solids contain only one kind of interaction)
What happens energetically when a chemical bond is broken? (Energy must be supplied to separate the bonded atoms) (!Energy is always released by the breaking step itself) (!The energy of the system must become exactly zero) (!The nuclei disappear from the bonded atoms)
Memory Game
| Cation | Positively charged ion formed by loss of electrons or by another process that leaves net positive charge |
| Anion | Negatively charged ion formed by gain of electrons or by another process that leaves net negative charge |
| Electronegativity | Tendency of an atom to attract shared electron density |
| Delocalization | Electron density spread over more than one localized bond or atomic center |
| Lattice energy | Energy measure associated with separating or forming an ionic crystal from gaseous ions |
| Ductility | Ability of a material to be drawn into a wire |
Drag and Drop
| Match the correct terms. | Topic |
|---|---|
| Ionic lattice | Extended arrangement of oppositely charged ions |
| Covalent molecule | Discrete particle whose atoms share electron density |
| Network solid | Extended structure joined by covalent bonds |
| Metallic solid | Extended structure with delocalized conduction electrons |
| Polar bond | Unequal sharing of electron density between bonded atoms |
...
Crossword Puzzle
| Cation | What is a positively charged ion called? |
| Anion | What is a negatively charged ion called? |
| Lattice | What repeating three-dimensional arrangement is typical of an ionic crystal? |
| Covalent | Which bonding model is based on shared electron density between atoms? |
| Metallic | Which bonding model describes delocalized electrons across many metal atoms? |
| Polarity | What term describes an uneven distribution of electrical charge in a bond or molecule? |
LearningApps
Cloze Text
Open-Ended Tasks
Easy
- Bonding Infographic: Create a one-page infographic that compares what happens to valence electrons in ionic, covalent, and metallic bonding and includes one correctly explained example of each.
- Lewis Structure Portfolio: Draw Lewis structures for H2, H2O, CO2, NH3, and O2, then annotate bond order, lone pairs, and any molecular polarity you can justify from shape.
- Materials Photo Survey: Photograph or sketch four everyday materials and classify the dominant bonding model you expect in each, explaining what evidence from composition or properties supports your choice.
- Property Prediction Cards: Make a set of prediction cards for melting behavior, conductivity, brittleness, and malleability, then use them to explain which bonding model best fits each property pattern.
Standard
- Crystal Model Project: Build a physical or digital model of an NaCl-type lattice and use it to demonstrate why charge neutrality, coordination, and brittleness follow from the arrangement of ions.
- Conductivity Investigation: With teacher-approved equipment, compare the conductivity of safe solid substances and aqueous solutions, record your observations, and explain why charge-carrier mobility matters.
- Materials Interview: Interview a chemistry teacher, electrician, jeweler, engineer, technician, or materials scientist about how conductivity, hardness, corrosion resistance, or ductility affects material choice, then connect the answers to bonding.
- Bonding Explainer Video: Produce a three-to-five-minute video that corrects at least three common misconceptions about ionic, covalent, and metallic bonding using diagrams and real material examples.
Advanced
- Born Haber Analysis: Construct and explain a Born-Haber cycle for an ionic compound using provided thermochemical data, then analyze which energy terms favor or oppose formation of the solid.
- Carbon Allotrope Case Study: Compare diamond and graphite using structure, bonding, electron delocalization, hardness, and electrical behavior, then explain why the same element can form materials with very different properties.
- Alloy Design Challenge: Research a substitutional or interstitial alloy and produce a technical brief explaining how atomic-scale structural changes alter at least three macroscopic properties.
- Laboratory or Museum Study: Visit a school laboratory, university outreach lab, science museum, geology collection, or suitable virtual collection and document three materials whose structures illustrate ionic, covalent-network, or metallic bonding, then evaluate how well the simple bonding models explain the evidence.
Learning Assessment
- Structure to Property Analysis: Given an unfamiliar solid's composition, melting behavior, conductivity in different states, and mechanical properties, infer the most plausible bonding and structural model and justify every step of your reasoning.
- Model Evaluation: Compare the electron-transfer model, Lewis model, electron-sea model, and band model, explaining one useful prediction and one limitation of each.
- Energetics Transfer Task: Use ionic charge, ionic radius, and qualitative Coulombic reasoning to rank several ionic solids by expected lattice-energy magnitude and defend your ranking.
- Polarity and Geometry Assessment: Determine bond polarity and molecular polarity for a set of molecules, showing how electronegativity and geometry combine rather than treating them as separate facts.
- Materials Selection Problem: Choose suitable materials for an electrical cable, a high-temperature cutting surface, an electrolyte, and a bendable structural component, and justify each choice from bonding and structure.
- Evidence Based Revision: You are given experimental evidence that contradicts an initial bonding classification; revise the model and explain which new observation was most important in changing your conclusion.
Evidence of Learning
Strong evidence of learning includes both correct chemistry and the ability to use bonding models flexibly.
Knowledge: You can distinguish ions, molecules, lattices, covalent networks, and metallic solids; explain valence electrons, electronegativity, polarity, lattice energy, bond energy, and delocalization; and describe how simple models connect to more advanced orbital and band ideas.
Reasoning skills: You can move from composition to electron behavior, from electron behavior to structure, and from structure to predicted properties. You can explain exceptions instead of forcing every substance into a rigid rule.
Practical and communication skills: You can interpret or construct Lewis structures, crystal models, comparison tables, conductivity evidence, diagrams, and short scientific explanations. You can communicate the difference between a model and the physical system it represents.
Products: Suitable evidence may include an infographic, model, laboratory report, interview summary, explainer video, technical brief, thermochemical analysis, or annotated case study.
Transfer achievement: You can apply bonding concepts to unfamiliar substances and materials, justify a material choice, evaluate conflicting evidence, and revise a model when experimental observations require it.
OERs on the Topic
For an open overview of chemical bonding, use the English Wikipedia article below. It connects ionic, covalent, and metallic bonding and links onward to more specialized articles.
You can also explore Ionic bonding, Covalent bond, Metallic bonding, Electronegativity, Lewis structure, Lattice energy, Molecular orbital theory, Band theory, and Materials science as linked learning topics.
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