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Guided learning journeys that build knowledge step by step.
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7817 Paths · page 613 / 782
This learning path introduces high school students to the fundamental principle of materials science: how the arrangement of atoms and bonds in a material determines its macroscopic properties. Starting from atomic structure and bonding, the path progresses through crystal structures and then connects these structural features to mechanical, thermal, electrical, and optical properties, using concrete case studies to illustrate the concepts.
This learning path introduces the foundational concepts of crystallography, starting from the nature of solids and unit cells, through symmetry elements, to the classification of the seven crystal systems and the fourteen Bravais lattices. It is designed for high school students beginning their study of solid-state chemistry.
This learning path guides high school students through the fundamental differences between crystalline and amorphous solids. Starting with atomic structure and bonding, it explores how the arrangement of particles defines a material's properties, introduces key concepts like unit cells and X-ray diffraction, and clarifies related states such as liquid crystals.
This learning path introduces high school students to the fundamental concepts of materials structure, starting with atomic structure and the periodic table, then exploring the four main types of chemical bonding (ionic, covalent, metallic, and van der Waals). It covers crystal structures, atomic packing, and coordination, providing a systematic understanding of how atomic-level structure determines material properties.
This learning path introduces the fundamental concepts of materials chemistry, covering the main classes of materials (metals, polymers, ceramics, composites, and semiconductors) and the key structure-property relationships that determine their performance. Designed for high school students beginning materials science, the path starts with basic chemistry principles and builds towards a systematic understanding of material classification and properties.
This learning path equips aspiring researchers with the fundamental concepts and practical skills needed for research in electrochemistry. It covers core theory, advanced techniques such as cyclic voltammetry and electrochemical impedance spectroscopy, experimental design, data analysis, and scientific communication.
This learning path explores the fundamentals and applications of electrochemistry in biomass conversion, focusing on the electrocatalytic oxidation of key platform molecules such as HMF, furfural, and glycerol. It bridges organic electrochemistry, electrocatalysis, and sustainable chemistry, providing a structured approach from basic principles to advanced applications.
This graduate-level learning path builds from core electrochemical theory and measurement techniques to the specialized domain of single-particle and single-molecule electrochemistry. It emphasizes the physical principles, experimental methods, and data interpretation needed to understand stochastic collision events at nanoelectrodes.
This learning path explores advanced battery chemistries beyond conventional lithium-ion, focusing on lithium-sulfur (Li-S) and lithium-air (Li-air) systems. It covers fundamental electrochemistry, key challenges such as the polysulfide shuttle and oxygen electrode instability, and the role of electrolytes and materials in addressing these issues.
This path guides graduate students from foundational electrochemistry and nitrogen chemistry through the mechanisms, catalysts, and selectivity challenges of electrochemical ammonia synthesis. It emphasizes understanding the competition with hydrogen evolution and current research directions in green ammonia production.