English

Dissipation Enables Strongly Detuning-Dependent Interference in Pulsed Dynamical Decoupling

Quantum Physics 2026-07-28 v1 Atomic Physics

Abstract

One of the defining features of pulsed dynamical decoupling is its suppression of a driven qubit's sensitivity to static detuning errors between the drive field and qubit resonance. In this paper, we show that dissipation, in the form of excited-state decay, can change this behavior entirely, producing an interference signal with a strong detuning dependence. This signal arises from decay during driven evolution and relies on coherence retained by the qubit after such a decay event. We develop analytical and numerical models that capture the underlying mechanism and observe this same dissipation-induced detuning dependence experimentally in both a free-space strontium atom interferometer and a superconducting transmon qubit system. We also use this dissipation-induced detuning dependence as the basis for a new spectroscopic technique called Dissipative Carr-Purcell Spectroscopy (DCPS) and compare it with a traditional Ramsey sequence. Our results establish a regime of pulsed dynamical decoupling in which dissipation reshapes, rather than merely degrades, coherent control, and we expect these dynamics to be relevant to a wide range of quantum systems.

Cite

@article{arxiv.2607.25176,
  title  = {Dissipation Enables Strongly Detuning-Dependent Interference in Pulsed Dynamical Decoupling},
  author = {Kenneth DeRose and Jonah Glick and Kefeng Jiang and Hans Johnson and Tanay Roy and Sharika Saraf and Anya Abraham and Hardeep Singh and Tim Kovachy},
  journal= {arXiv preprint arXiv:2607.25176},
  year   = {2026}
}