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2025 Nobel Prize Lectures in Physics

Physics seminar by John Clarke, Michel H. Devoret and John M. Martinis, University of California, Berkeley; Yale University; University of California, Santa Barbara; Google Quantum AI

Hosted by Royal Swedish Academy of Sciences

Monday 09:00–10:55 Stockholm (GMT+1)

Recording available

Stockholm University, Stockholm, Sweden

Recording

Abstract

John Clarke, Michel H. Devoret and John M. Martinis trace the discovery that a macroscopic electrical circuit can display quantum tunnelling and discrete energy levels. Clarke connects early superconducting measuring devices with experiments on current-biased Josephson junctions. Microwave-induced resonances and the crossover from thermal activation to temperature-independent escape provide tests of quantum behaviour.

Devoret explains how superconducting circuits became controllable artificial atoms, with Josephson elements enabling engineered energy spectra, qubits and quantum-limited amplifiers. He considers what these designed systems make possible beyond experiments with natural atoms.

Martinis follows the development from early junction experiments to superconducting quantum processors. He discusses energy-level quantization, tunnelling, photon generation, quantum computational experiments, and the fabrication and error-control challenges involved in building useful machines.

Topics

Josephson junctionsmacroscopic quantum tunnellingsuperconducting qubitsartificial atoms

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