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Guided learning journeys that build knowledge step by step.
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7817 Paths · page 631 / 782
This learning path equips students with the skills to apply chemometric methods—including PCA, PLS, clustering, experimental design, SIMCA, and spectral deconvolution—to complex analytical data sets. It builds from foundational statistics and data preprocessing through to advanced multivariate modeling and model validation, emphasizing practical application in analytical chemistry.
This path provides a systematic, advanced-level study of modern sample preparation and derivatization techniques in analytical chemistry. Learners will progress from fundamental concepts through classical and modern extraction methods, derivatization for GC and HPLC, automation, and green chemistry principles, culminating in the ability to design and validate robust sample preparation workflows.
This advanced learning path provides a rigorous theoretical foundation for chromatographic separations, covering plate theory, rate theory (van Deemter equation), resolution, selectivity, efficiency, and optimization, including gradient elution theory. It is designed for university students with a solid background in analytical chemistry and physical chemistry.
This advanced learning path covers the principles and applications of voltammetric techniques, including cyclic voltammetry, polarography, stripping voltammetry, amperometry, and the use of microelectrodes. It builds from fundamental electrochemistry and electrode kinetics to practical applications in electroanalysis.
This advanced learning path guides students through the principles and applications of potentiometry and ion-selective electrodes (ISEs). Starting with fundamental electrochemistry and the Nernst equation, it progresses to reference electrodes, the glass pH electrode, and various ISEs, culminating in direct potentiometry and calibration techniques. Designed for systematic learning in electrochemical analysis.
This learning path provides a systematic journey from the fundamental principles of nuclear magnetic resonance to advanced 2D techniques and practical structural elucidation. It covers essential topics such as chemical shifts, coupling, integration, and sample preparation, with a focus on 1H and 13C NMR and their applications in organic chemistry analysis.
A comprehensive learning path covering the theory, instrumentation, and practical application of IR (FTIR) and Raman spectroscopy for identifying molecular structures. Starting from quantum mechanical foundations, the path progresses through group frequencies, sample preparation, spectral interpretation, and real-world applications, with emphasis on complementary use of both techniques.
This learning path provides a comprehensive understanding of atomic spectroscopy techniques used for elemental analysis, covering fundamental principles, instrumentation, methodologies, and applications. It progresses from basic atomic theory to advanced techniques like ICP-MS, emphasizing the practical aspects of sample introduction and interference management.
A comprehensive learning path for university students to master advanced concepts in UV-Vis and fluorescence spectroscopy. It covers derivative spectroscopy, simultaneous determination, fluorescence quantum yield, lifetime, quenching, and modern instrumentation, building from foundational principles to sophisticated analytical techniques.
This learning path guides high school students through the fundamental principles of capillary electrophoresis (CE), starting with basic analytical chemistry and chromatography, then moving to electrophoresis basics, CE instrumentation, electrophoretic mobility, and electroosmotic flow. It covers the main separation modes—CZE, MEKC, and CGE—along with detection methods and practical applications, ensuring a systematic understanding of CE.