About the Nanotechnology Course
Program Highlights
Course Curriculum
Module 1: Nano and Materials Science Foundations for Energy Storage and Solar Cells
- Analyze the quantum confinement effects in zero-dimensional quantum dots and one-dimensional nanowires to optimize bandgap engineering for photovoltaic applications.
- Evaluate the thermodynamic stability and ionic conductivity of solid-state electrolyte interfaces using electrochemical impedance spectroscopy (EIS) principles.
- Model charge carrier dynamics, exciton generation, and diffusion lengths in organic, inorganic, and hybrid perovskite-based nanostructured solar cells.
Module 2: Characterization Techniques and Instrumentation Pipelines
- Configure high-resolution transmission electron microscopy (HR-TEM) and X-ray diffraction (XRD) workflows to analyze crystal phases and lattice defects in nanostructured anodes.
- Implement atomic force microscopy (AFM) and scanning electron microscopy (SEM) imaging protocols to evaluate surface roughness and thin-film morphology.
- Analyze charge transport kinetics and recombination lifetimes using space-charge-limited current (SCLC) and time-resolved photoluminescence (TRPL) measurements.
Module 3: Synthesis, Fabrication, and Process Design
- Design scalable chemical vapor deposition (CVD) and atomic layer deposition (ALD) processes to deposit conformal passivation layers on silicon-based solar cells.
- Formulate colloidal synthesis protocols for lead-halide perovskite nanocrystals with narrow size distribution and high photoluminescence quantum yield (PLQY).
- Develop roll-to-roll (R2R) slot-die coating pipelines for the continuous, high-throughput manufacturing of flexible organic photovoltaic (OPV) modules.
Module 4: Computational Materials Modeling and Simulation
- Execute Density Functional Theory (DFT) calculations using Quantum Espresso or VASP to predict the electronic band structures of novel 2D materials.
- Simulate lithium-ion diffusion pathways and energy barriers in nanostructured transition metal oxide cathodes using classical Molecular Dynamics (MD) packages.
- Apply finite-element optical modeling via Lumerical FDTD to design light-trapping plasmonic nanostructures that maximize solar cell photon absorption.
Module 5: Device Integration, Testing, and System Performance
- Assemble coin-cell and pouch-cell lithium-sulfur batteries utilizing sulfur-carbon nanocomposites and protective artificial solid-electrolyte interphase (SEI) layers.
- Evaluate solar cell parameters including open-circuit voltage, short-circuit current density, fill factor, and power conversion efficiency (PCE) under AM 1.5G conditions.
- Measure battery cycling life, rate capability, and coulombic efficiency using high-precision battery test systems under temperature-controlled environments.
Module 6: Safety, Standards, and Regulatory Compliance
- Formulate laboratory safety protocols for the storage, handling, and containment of pyrophoric nanoparticles, toxic precursors, and volatile organic solvents.
- Align nanomaterial synthesis and chemical waste disposal pipelines with EPA, REACH, and OSHA regulations regarding environmental toxicity and exposure limits.
- Implement standard operating procedures (SOPs) for testing the thermal runaway threshold of nanostructured batteries under UN 38.3 and IEC 62133 standards.
Module 7: Industrial Applications and Sector-Specific Use Cases
- Design high-capacity silicon-dominant anodes with engineered void spaces to mitigate volumetric expansion in commercial electric vehicle (EV) battery packs.
- Analyze the technical and commercial feasibility of integrating flexible, semitransparent perovskite solar cells into Building-Integrated Photovoltaics (BIPV).
- Configure grid-scale energy storage systems (ESS) leveraging sodium-ion chemistries with nanostructured Prussian blue analogue cathode materials.
Tools, Techniques, or Platforms Covered
Quantum Espresso
Lumerical FDTD
OriginLab
Python
ChemDraw
Real-World Applications
- Apply energy storage nanomaterials module to energy storage for impactful real-world solutions and tangible results.
- Apply nano materials for batteries and solar to biomedical imaging for impactful real-world solutions and tangible results.
- Apply nanotech photovoltaics recorded training to materials engineering for impactful real-world solutions and tangible results.
- Apply nanotechnology energy storage course to electronics miniaturization for impactful real-world solutions and tangible results.
- Apply solar cell nanotech training to environmental remediation for impactful real-world solutions and tangible results.
Who Should Attend & Prerequisites
- Designed for Materials science students.
- Designed for Nanotechnology researchers.
- Designed for R&D engineers.
- Designed for Physics and chemistry graduates.
Prerequisites:







