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Explore stretchable electronics for continuous health monitoring, including sensors, antennas, and energy harvesting. Learn about design strategies, fabrication processes, and applications in biomedical research and IoT.
Explore classical and quantum atomic modeling using MIT's toolkit. Perform molecular dynamics, Monte Carlo simulations, and quantum chemistry computations. Learn practical applications for various physics and chemistry courses.
Master SEM/FESEM imaging techniques through practical analogies. Learn key parameters, beam control, and troubleshooting for high-quality microscopy results across various sample types and conditions.
Explore condensed matter physics through simulations and research experiences using the MIT Atomic-Scale Modeling Toolkit. Learn about covalent bonding, bandstructure, phonons, and magnetic phase transitions.
Explore interactive modeling of materials using density functional theory with Quantum ESPRESSO in the MIT Atomic-Scale Modeling Toolkit. Learn to compute and analyze various material properties through hands-on examples.
Explore atomic force microscopy for nanoscale fabrication and characterization. Learn lithographic techniques, specialized imaging modes, and witness live demonstrations of AFM lithography and phase imaging.
Explore FTIR and UV-Vis spectroscopy techniques, their principles, applications, and operational mechanisms. Gain insights into radiation interactions, vibration types, and spectrum analysis for nanoscale characterization.
Explore transmission electron microscopy fundamentals, including microscope components, image formation, sample preparation techniques, and applications in materials science and biology.
Explore transmission electron microscopy's principles, components, and applications in nanotechnology. Learn about electron sources, lenses, aberration correction, and cutting-edge imaging techniques for nanomaterial characterization.
Explore MEMS pressure sensor fabrication through detailed steps, from photolithography to etching and sputtering. Learn practical techniques for creating these essential microelectromechanical devices used in various applications.
Explore nano-characterization and nano-fabrication techniques using electron and ion beam tools. Learn about lithography, EBL, FIB, and their applications in research and semiconductor industry.
Explore Chemical Vapor Deposition modes for 1D and 2D nanomaterials. Learn LPCVD fundamentals, system design, thin film growth, and nanowire synthesis using VS and VLS mechanisms.
Explore thermal evaporation in nanotechnology, from fundamental concepts to practical applications. Learn about vacuum science, PVD techniques, and equipment, with a live demonstration and cost-effective setup options.
Explore core vacuum technology concepts for advanced manufacturing and material characterization. Learn about vacuum ranges, mean free path, system design, and pump types through demonstrations and practical examples.
Explore plasma technology as an enabling tool for modern manufacturing, focusing on semiconductor etching processes and contrasting wet etching with plasma etching methods.
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