Korea Advanced Institute of Science and Technology(KAIST)

Structure of Ceramics: Materials Science Fundamentals

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Korea Advanced Institute of Science and Technology(KAIST)

Structure of Ceramics: Materials Science Fundamentals

Seungbum Hong

Instructor: Seungbum Hong

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Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Explain how close-packing and ionic radius rules determine ceramic crystal structures.

  • Use Kröger-Vink notation to construct and interpret Brouwer diagrams for defects.

  • Apply the Debye-Hückel correction to model interactions between charged defects.

  • Analyze diffusion, conductivity, and surface data to evaluate ceramic performance.

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Recently updated!

August 2026

Assessments

29 assignments¹

AI Graded see disclaimer
Taught in English

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There are 8 modules in this course

You'll learn how atoms pack together in the most efficient arrangements possible. This module covers the geometry of close-packed structures—the building blocks of nearly every ceramic and crystalline material. You'll work through three progressively detailed lessons that build your ability to visualize, describe, and compare packing arrangements in real structures.

What's included

4 videos4 assignments

Not all ionic crystal structures are equally stable. You'll learn what controls structural stability — from ionic radius ratios to charge balance — and how to predict which structure a given ionic compound will adopt. Four detailed lessons give you the tools to reason through stability problems with confidence.

What's included

4 videos5 assignments

You'll connect the foundational principles of packing and stability to specific, real-world ceramic crystal structures. This module also introduces a special topic — the transistor — showing how ceramic structure concepts extend into electronic materials. You'll build the ability to identify and interpret the structures that define ceramic behavior and function.

What's included

3 videos4 assignments

You'll learn how to track and visualize defect concentrations across a range of conditions using the Brouwer Diagram—a core tool in ceramic materials science. Starting with point defects, you'll build the conceptual and analytical skills to construct and interpret these diagrams for real ceramic systems.

What's included

3 videos3 assignments

Defects rarely act alone. You'll learn how defects in ceramic materials interact with each other and how those interactions affect material properties. The module also covers the Debye-Hückel correction—a key refinement that accounts for electrostatic interactions between charged defects in real systems.

What's included

4 videos5 assignments

You'll learn two powerful surface characterization techniques—Kelvin Probe Force Microscopy (KPFM) and Electrostatic Force Microscopy (EFM). This module covers how each technique works, what it measures, and how to interpret the data it produces. You'll build the skills to select and apply these tools when studying the electrical properties of ceramic surfaces.

What's included

3 videos4 assignments

You'll learn how atomic transport through ceramic materials is modeled at the continuum scale. This final module covers the governing equations of diffusion kinetics and shows how they apply to real ceramic systems.

What's included

2 videos3 assignments

You evaluate a candidate ceramic material being considered for use as a solid oxide fuel cell electrolyte. You justify its crystal structure and stability, model its defect chemistry with a Brouwer diagram, assess the reliability of that model, recommend a surface characterization method, and evaluate its transport behavior. You produce a single Material Qualification Report that integrates structural, defect-chemical, and transport analysis into one engineering recommendation.

What's included

3 readings1 assignment

Instructor

Seungbum Hong
Korea Advanced Institute of Science and Technology(KAIST)
8 Courses57,271 learners

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¹ Some assignments in this course are AI-graded. For these assignments, your data will be used in accordance with Coursera's Privacy Notice.