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Guided learning journeys that build knowledge step by step.
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7819 Paths · page 653 / 782
This learning path guides high school students through the structure of the periodic table and the periodic trends that govern element properties. Starting with atomic structure and the organization of elements, it builds up to explaining patterns in atomic radius, ionization energy, and electronegativity. The path emphasizes the relationships between element position and properties, enabling students to predict and compare elemental behavior.
This learning path traces the historical development of atomic theory from Dalton's solid sphere model to the modern quantum mechanical view, while systematically covering the subatomic particles, the nucleus, and the electron cloud. It is designed for high school students beginning their study of chemistry, providing a clear sequence from foundational concepts to a basic understanding of atomic structure.
This learning path guides beginning chemistry students through the essential quantitative skills needed for chemical calculations. Starting with basic arithmetic and mathematical notation, you will learn the SI system, scientific notation, significant figures, and dimensional analysis, culminating in the ability to perform accurate conversions and calculations in chemistry.
This learning path introduces beginners to the scope of chemistry, its major branches, and the process of scientific inquiry. It covers the scientific method, hypothesis formation, experimentation, and the development of theories and laws, providing a foundational understanding for further study.
A comprehensive graduate-level path to develop independent research skills in condensed matter physics, covering foundational theory, advanced topics, experimental and computational methods, and professional research practices. Designed for systematic learning with a focus on genuine knowledge dependencies.
This learning path introduces the fundamental physics of two-dimensional materials, focusing on graphene, transition metal dichalcogenides (TMDs), heterostructures, and moiré physics. Starting from basic condensed matter concepts, it builds up to advanced topics like band structure engineering and correlated electron behavior. The path is designed for university students with a physics background interested in nanomaterials.
This learning path traces the historical and conceptual development of condensed matter physics through the contributions of five pivotal figures: Mott, Landau, Bardeen, Anderson, and Kondo. It covers essential background in quantum mechanics and solid state physics, then explores each scientist's key ideas and their interconnections, culminating in an appreciation of the field's evolution and unity.
This graduate-level path guides researchers through the physics of topological spin textures, focusing on magnetic skyrmions. It covers the foundational magnetism and topology, the stabilization mechanisms of skyrmions, their dynamic behaviors, detection methods, and their potential in memory technologies.
This advanced graduate-level path explores the physics of quantum spin liquids (QSLs), focusing on magnetic frustration, fractionalized excitations, and the Kitaev model. It builds from foundational many-body concepts to current research topics, emphasizing the theoretical framework and key models.
A graduate-level learning path covering the physics of twisted bilayer systems, from electronic structure basics to correlated states and magic-angle phenomena. Designed for researchers interested in twistronics, this path builds foundational knowledge in band theory and Dirac materials before exploring the unique properties of moiré superlattices.