| 1 | <p>Outline Dirac quantization of the electromagnetic field</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 2 | <p>Discuss the quantum mechanics of the harmonic oscillator as it relates to photons: energy spectrum, number, creation and annihilation operators; provide appropriate derivations.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 3 | <p>Review the properties of quantum states of the electromagnetic field: thermal states, coherent states, squeezed states; provide appropriate derivations.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 4 | <p>Define and use the P, Q, and Wigner representations of the electromagnetic field.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Critical Thinking</strong></p><p><strong style="color: rgb(73, 80, 87);">Solution-Seeking</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 5 | <p>Derive and solve the Jaynes-Cummings model of quantized radiation interacting with matter</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Solution-Seeking</strong></p> </p> |
| 6 | <p>Solve problems in quantum damping theory employing master equations, quantum Langevin equations, inputs and outputs, correlation functions and quantum regression.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Critical Thinking</strong></p><p><strong style="color: rgb(73, 80, 87);">Solution-Seeking</strong></p> </p> |
| 7 | <p>Discuss resonance fluorescence as an example of quantum damping theory: Mollow spectrum, photon antibunching.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Critical Thinking</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 8 | <p>Discuss and review applications of the above in quantum information science.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Knowledge and Practice</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 9 | <p>Devise an appropriate mathematical strategy to solve a problem set out in physical terms, possibly consulting online resources and/or fellow students.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Critical Thinking</strong></p><p><strong style="color: rgb(73, 80, 87);">Solution-Seeking</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |
| 10 | <p>Present written solutions to assigned problems in a thoroughly argued manner, setting out the method used and all essential steps in a logical sequence.</p> | <p>MSc - Master of Science - Graduate Profile <p><strong style="color: rgb(73, 80, 87);">Critical Thinking</strong></p><p><strong style="color: rgb(73, 80, 87);">Solution-Seeking</strong></p><p><strong style="color: rgb(73, 80, 87);">Communication</strong></p> </p> |