Foundations of Quantum Information
Covers qubits, superposition, entanglement, and basic quantum circuits. Requires linear algebra and introductory probability.
Each program is self-paced and designed to be accessible to learners from adjacent technical disciplines.
Covers qubits, superposition, entanglement, and basic quantum circuits. Requires linear algebra and introductory probability.
Grover's, Shor's, and variational quantum algorithms. Includes hands-on circuit implementation with Qiskit or Cirq.
Stabiliser codes, surface codes, and fault-tolerance thresholds. For researchers with solid quantum mechanics background.
Classical vs. quantum cryptographic assumptions, BB84, E91, device-independent QKD, and NIST PQC standards.
Heisenberg-limited measurement, atomic interferometry, and NV-centre magnetometry with real-world case studies.
Comparative survey of superconducting, trapped-ion, photonic, and spin-qubit platforms — architecture, challenges, and trade-offs.