35 тысяч подписчиков
1 тысяч видео
ECE Purdue Boltzmann Law Physics to Computers: Epilogue
Nanophotonics & Metamaterials L3.2: Enabling Nanophotonics with Plasmonics
nanoHUB-U Nanophotonic Modeling L1.2: Photonic Bandstructures and Bandgaps: 1D Bandstructures
nanoHUB-U Nanophotonic Modeling L3.15: MEEP - Photonic Bandstructures
nanoHUB-U Nanophotonic Modeling L1.14: Formulating the Photonic Bandstructure Calculation
nanoHUB-U Nanophotonic Modeling L4.14: Thermal Transport Modeling
nanoHUB-U Nanophotonic Modeling L1.11: Other 2D Photonic Structures
Running a Python 3 Script in a nanoHUB Jupyter Notebook
NACK - Novel Two-dimensional (2D) Materials and Devices for Biomimetic Sensing and Computing
nanoHUB-U Nanophotonic Modeling L1.18: Running MIT Photonic Bands
nanoHUB-U Nanophotonic Modeling L1.20: MPB for 3D Lattices and Bandgap Maximization
nanoHUB-U Nanophotonic Modeling L1.15: Methods for Solving the Photonic Bandstructure
Modeling of P-N Junction Devices using Various Materials for Photovoltaic Applications
nanoHUB-U Nanophotonic Modeling L3.16: MEEP - Defect Resonant Modes
Mathematica for CUDA and OpenCL Programming
nanoHUB-U Nanophotonic Modeling L4.3: Photonic Crystal Lasers
Nanophotonics & Metamaterials L3.1: Enabling Nanophotonics with Plasmonics
nanoHUB-U Nanophotonic Modeling L2.2: Connecting Ray Optical Matrices
nanoHUB-U Nanophotonic Modeling L4.10: An FEM Waveguide Mode Solver
nanoHUB-U Nanophotonic Modeling L2.4: Multilayered Photonic Systems: Computational Tools I
nanoHUB-U Fundamentals of Nanoelectronics I: M4.3 The "Spinning" Electron - Spin Potentials
nanoHUB-U Nanophotonic Modeling L1.1: Introduction
nanoHUB-U Nanophotonic Modeling L1.8: Defects in 2D Photonic Crystals
nanoHUB-U Nanophotonic Modeling L2.1: Introduction
nanoHUB-U Nanophotonic Modeling L1.7: Sysmmetries in 2D Photonic Crystals
nanoHUB-U Nanophotonic Modeling L1.13: Rod-Hole 3D Photonic Crystals
nanoHUB-U Nanophotonic Modeling L1.2: Bloch Theorem
nanoHUB-U Nanophotonic Modeling L2.2: Multilayered Photonic Systems: Wave Optics Transfer Matrices
nanoHUB-U Nanophotonic Modeling L1.4: Reciprocal Lattice Vectors
nanoHUB-U Nanophotonic Modeling L1.4: Photonic Bandstructures and Bandgaps: 2D Photonic Crystal
nanoHUB-U Nanophotonic Modeling L1.5: Photonic Bandstructures and Bandgaps: Crystal Waveguides
nanoHUB-U Nanophotonic Modeling L1.3: Photonic Bandstructures and Bandgaps: 2D Bandstructures
Solar Cells Lecture 2: Physics of Crystalline Solar Cells
nanoHUB-U Nanophotonic Modeling L4.11: Evaluating FEM Waveguide Solvers
nanoHUB-U Nanophotonic Modeling L1.6: 2D Photonic Crystal Bandgaps
nanoHUB-U Nanophotonic Modeling L1.12: 3D Photonic Crystals
nanoHUB-U Nanophotonic Modeling L1.22: Summary of Unit 1
nanoHUB-U MOSFET Essentials L3.5: MOS Electrostatics - MOS CV
Teaching Engineering using Jupyter Notebooks
Density Functional Theory: Introduction and Applications
Debugging Neural Networks
Hands-on Teaching with Jupyter Notebooks on nanoHUB
ECE 606 Solid State Devices L14.3: Temperature Dependence of Carrier Concentration
The Eötvös Paradox: The Enduring Significance of Eötvös' Most Famous Experiment
ABACUS PN Junctions (Spring 2022)
nanoHUB-U Nanophotonic Modeling L3.5: Light Trapping in Photovoltaics
Tunnel FETs - Device Physics and Realizations
nanoHUB-U Fundamentals of AFM L1.5: Tip-Surface Interactions (Non-Contact) - Keesom Force
nanoHUB-U Fundamentals of AFM L2.3: Tip-Surface Interactions (Contact) - Dejaugin Approximation
nanoHUB-U Nanoscale Transistors L3.2: The Ballistic Nanotransistor - Modes
nanoHUB-U Nanoscale Transistors L1.1: The Transistor - The Transistor as a Black Box