Path Catalog
正在从 AllPath API 加载 Path Catalog…
Path Catalog
正在从 AllPath API 加载 Path Catalog…
Path Catalog
列表数据实时取自 GET /api/v1/paths,仅包含存在已发布版本的 Path。
共 7800 条 Path · 第 230 / 780 页
This learning path guides high school students from basic algebra to confidently converting between energy units such as joules, calories, BTUs, kWh, and toe, and quantifying energy consumption. It covers power and energy density, providing practical skills for comparing energy sources and understanding energy use.
A beginner-friendly path to understand and apply the laws of thermodynamics to energy systems. It covers the first and second laws, entropy, enthalpy, heat engines, heat pumps, and Carnot efficiency, building from basic physics and calculus.
This learning path introduces the main forms of energy—mechanical, thermal, chemical, electrical, nuclear, and radiant—and explains the principles of energy conversion, efficiency, and energy chains. It starts with the foundational concept of energy and progresses through each form, culminating in real-world applications and the concept of energy chains.
This learning path introduces high school students to the fundamental concepts of energy science, covering the definition of energy, its various forms, the principle of conservation, and the historical transitions in energy use. It establishes a solid foundation for further studies in energy-related fields.
This graduate-level learning path provides a comprehensive understanding of self-healing polymer materials. It begins with foundational polymer chemistry and mechanics, then systematically explores the three major healing mechanisms: encapsulated healing agents, reversible covalent bonds, and supramolecular interactions. Learners will develop the ability to analyze, compare, and design self-healing systems based on material requirements.
This learning path equips graduate students and beginning researchers with the essential skills and methodologies for conducting rigorous research in biomaterials. It covers the full research lifecycle from problem formulation and literature review through experimental design, characterization, data analysis, and scientific communication, with a strong emphasis on ethics and reproducibility.
This advanced learning path guides graduate students and researchers through the interdisciplinary knowledge required to understand and apply biomaterials in organ-on-a-chip devices. It covers fundamental concepts in cell biology, microfluidics, and biomaterials, focusing on PDMS and hydrogels, and culminates in their applications for drug testing and disease modeling.
This learning path equips graduate students and researchers with the knowledge to analyze biomaterials for cancer diagnosis and therapy. It covers cancer biology fundamentals, biomaterial design principles, and advanced therapeutic modalities including nanoparticle drug delivery, photothermal therapy, immunotherapy, and theranostics. The path emphasizes the integration of materials science with oncology to develop innovative cancer treatments.
This advanced learning path equips graduate students and researchers with the knowledge to understand and design biomaterials that modulate immune responses. It covers foundational immunology, biomaterial-immune interactions, and advanced immunomodulatory strategies, culminating in vaccine design.
This learning path guides graduate students and researchers through the foundational principles and advanced techniques of 3D bioprinting for tissue engineering. It covers biomaterials and bioinks, the main bioprinting modalities, vascularization strategies, and the path toward organ printing, providing a comprehensive understanding of the field.