Insensitivity of Ion Motional Heating Rate to Trap Material over a Large Temperature Range
arXiv:1310.4385 · doi:10.1103/PhysRevA.89.012318
Abstract
We present measurements of trapped-ion motional-state heating rates in niobium and gold surface-electrode ion traps over a range of trap-electrode temperatures from approximately 4 K to room temperature (295 K) in a single apparatus. Using the sideband-ratio technique after resolved-sideband cooling of single ions to the motional ground state, we find low-temperature heating rates more than two orders of magnitude below the room-temperature values and approximately equal to the lowest measured heating rates in similarly-sized cryogenic traps. We find similar behavior in the two very different electrode materials, suggesting that the anomalous heating process is dominated by non-material-specific surface contaminants. Through precise control of the temperature of cryopumping surfaces, we also identify conditions under which elastic collisions with the background gas can lead to an apparent steady heating rate, despite rare collisions.
v1: 6 pages, 3 figures; v2: 7 pages, 3 figures, analysis of temperature dependence and calculation of effects of collisions expanded and improved, minor errors corrected in discussions of Johnson noise and collisions and in appendix B
References in corpus (15)
- A microfabricated surface-electrode ion trap for scalable quantum information processing
- Scaling and Suppression of Anomalous Quantum Decoherence in Ion Traps
- Suppression of Heating Rates in Cryogenic Surface-Electrode Ion Traps
- Reduction of anomalous heating in an in-situ-cleaned ion trap
- Temperature Dependence of Electric Field Noise Above Gold Surfaces
- Randomized Benchmarking of Multi-Qubit Gates
- Simplified motional heating rate measurements of trapped ions
- Fabrication and heating rate study of microscopic surface electrode ion traps
- Controlling trapping potentials and stray electric fields in a microfabricated ion trap through design and compensation
- Temperature square dependence of the low frequency 1/f charge noise in the Josephson junction qubits
- Demonstration of a dressed-state phase gate for trapped ions
- Reduction of heating rate in a microfabricated ion trap by pulsed-laser cleaning
- Superconducting microfabricated ion traps
- Loading of a surface-electrode ion trap from a remote, precooled source
- Modular cryostat for ion trapping with surface-electrode ion traps