简介: |
报告摘要:
Superconducting circuits can behave like atoms making transitions between two energy levels. These circuits can test quantum mechanics at macroscopic scales and can perform atomic-physics experiments on a silicon chip. There is a deep analogy between natural atoms and the artificial atoms made of electrons confined in small superconducting components in quantum circuits. Both have discrete energy levels and exhibit coherent quantum oscillations between those levels. However, whereas natural atoms are controlled using visible or microwave photons that excite electrons from one state to another, the artificial atoms in the circuits are driven by currents, voltages, and microwave photons. Differences between quantum circuits and natural atoms include how strongly each system couples to its environment; the coupling is weak for atoms and strong for circuits. In contrast with naturally occurring atoms, artificial atoms can be lithographically designed to have specific characteristics, such as a large dipole moment or particular transition frequencies. That level of control is an important advantage over natural atoms. My talk will cover several interesting things which can be explored in these artificial systems. |