About the Plasmonics Course
Program Highlights
Course Curriculum
Module 1: Day 1 – Fundamentals of Plasmonics & Quantum Electrodynamics
- Explore surface plasmon resonance and plasmonic materials (gold, silver)
- Develop quantum‑state intuition for nanoscale wave functions
- Analyze superposition and entanglement in quantum plasmonics
- Model localized surface plasmon resonances (LSPR) analytically
Module 2: Day 2 – Quantum Electrodynamics in Plasmonic Systems
- Investigate plasmon‑enhanced light‑matter interaction in quantum dots and nanowires
- Identify quantum tunneling, non‑locality and strong coupling effects
- Design quantum‑enhanced biosensors and magnetic‑field sensors
- Simulate plasmonic waveguides and quantum optics experiments
Module 3: Day 3 – Plasmonic‑Quantum Devices for Next‑Generation Technology
- Assess the role of plasmonics in quantum gates, qubits and information transfer
- Explore plasmonic quantum memory, communication and cryptography applications
- Implement quantum‑enhanced measurement techniques (metrology, gravitational‑wave detection)
- Prototype nanostructured materials for quantum computing platforms
Tools, Techniques, or Platforms Covered
Lumerical FDTD
Qiskit
Microsoft Quantum Development Kit
Real-World Applications
- Apply Plasmonics and Quantum Electrodynamics at the Nanoscale skills directly to academic research, thesis work, and publications
- Build a professional portfolio showcasing practical nanotechnology competencies
- Solve industry-relevant problems using Plasmonics and Quantum Electrodynamics at the Nanoscale methodologies and tools
- Contribute to open-source projects and collaborative research in nanotechnology
- Prepare for competitive examinations, interviews, and professional certifications in nanotechnology
Who Should Attend & Prerequisites
- Industry‑recognized e‑Certification + e‑Marksheet from NSTC
- Hands‑on training with practical projects and industrial datasets
- Dedicated expert mentorship and doubt resolution
Prerequisites:







