A. A. Kirpichnikova

Systematic study of tunable laser cooling for trapped-ion experiments

A. P. Kulosa [1], O. N. Prudnikov [3,4], D. Vadlejch [1,2], H. A. Fürst, A. A. Kirpichnikova [3], A. V. Taichenachev [3,4], V. I. Yudin [3,4,5,1,2], T. E. Mehlstäubler

Abstract

We report on a comparative analysis of quenched sideband cooling in trapped ions. We introduce a theoretical approach for time-efficient simulation of the temporal cooling characteristics and derive the optimal conditions providing fast laser cooling into the ion's motional ground state. The simulations were experimentally benchmarked with a single $^{172}$Yb$^+$ ion confined in a linear Paul trap. Sideband cooling was carried out on a narrow quadrupole transition, enhanced with an additional clear-out laser for controlling the effective linewidth of the cooling transition. Quench cooling was thus for the first time studied in the resolved sideband, intermediate and semi-classical regime. We discuss the non-thermal distribution of Fock states during laser cooling and reveal its impact on time dilation shifts in optical atomic clocks.