scqubits-noise-decoherence
Table of Contents
Noise and Decoherence
Noise causes decoherence—the loss of quantum information. Main noise sources in superconducting qubits:
- Charge noise: fluctuations in gate voltage or offset charge ($\delta n_g$). Causes dephasing. Transmons reduce charge noise sensitivity via the $E_J \gg E_C$ regime.
- Flux noise: fluctuations in applied magnetic flux. Affects qubit frequency (flux-tunable systems) and couplings.
- 1/f noise: low-frequency noise (spectra $\propto 1/f$) causes slow frequency drifts.
- Photon shot noise: from the measurement apparatus, causes measurement back-action.
Decoherence Times
T1 (energy relaxation): $|1\rangle \to |0\rangle$ via photon emission, timescale microseconds to milliseconds
T2 (phase decoherence): loss of superposition coherence, limited by charge and flux noise
T2*: measured dephasing time (includes inhomogeneous broadening)
Typical values (state-of-the-art transmons):
- T1 ~ 50–100 μs
- T2 ~ 10–50 μs
- Gate time ~ 10–100 ns (so ~1000 gates per T1)
scqubits models noise analytically or numerically to predict decoherence effects. For detailed dynamics, use QuTiP to simulate open system evolution.
scqubits-noise-decoherence.md · Last modified: by 127.0.0.1
