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Explore nanomedicine applications, from nanoliposomes to targeted drug delivery, debunking myths and showcasing innovative developments in nanotechnology for medical advancements.
Explore Density Functional Theory fundamentals and applications using Quantum Espresso on nanoHUB. Learn to compute electronic structures, densities of state, total energies, and bulk modulus for materials.
Explore microfluidics through hands-on demonstrations and computational simulations, focusing on mixing techniques, soft lithography, and practical applications like red blood cell separation in microfluidic channels.
Explore charged-particle interaction analysis, covering SEM fundamentals, beam-sample interactions, detection methods, and advanced techniques like EPMA and EBSD for comprehensive micro/nano characterization.
Explore microfluidics fundamentals, physics, and applications. Learn about lab-on-chip devices, fluid behavior at microscale, and manufacturing processes. Gain insights into materials, design considerations, and practical applications like cell separatio…
Explore wave-based characterization techniques including X-ray diffraction, photoelectron spectroscopy, FTIR, and UV-Vis spectroscopy. Gain insights into nanomaterial analysis and practical applications using simulation tools.
Explore nanoscale polymer structures using atomic-level simulations. Learn about crystal structures, polymer science paradigms, and use an interactive Polymer Modeler to understand polyacrylonitrile processing and crystallization.
Explore how machine learning and physics-based methods synergize to revolutionize materials science, addressing challenges in data-driven design across various technology fields with Schrödinger's innovative tools.
Explore protein dynamics and spectroscopy with PigmentHunter, a user-friendly nanoHUB tool for simulating excitonic spectra of chlorophyll proteins. Learn its interface, workflow, and applications in molecular dynamics and spectral analysis.
Explore density functional theory, data visualization, and undergraduate research experiences using the MIT Atomic-Scale Modeling Toolkit for modern physics and condensed matter studies.
Explore machine learning for ionic conductivity prediction using Schrödinger's AutoQSAR tool. Gain hands-on experience with MS Maestro interface to create and implement models for materials science applications.
Explore finite element analysis for material microstructures using OOF2. Learn FEA fundamentals, simulate stress distributions, and discover its applications in materials engineering and education.
Explore MOSFET scaling, performance, and design using ABACUS tool suite. Experiment with gate length, double gate structures, and material properties to understand transistor behavior.
Explore MOS capacitors using ABACUS tool suite. Experiment with doping, structural parameters, and advanced effects in this hands-on semiconductor education session.
Explore ABACUS tool and Bipolar-Junction-Transistor-Lab. Experiment with BJTs, analyze device characteristics, and understand transistor behavior through hands-on simulations using industrial-grade software.
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