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Experimental verification of an indefinite causal order

  • Giulia Rubino*
  • , Lee A. Rozema
  • , Adrien Feix
  • , Mateus Araújo
  • , Jonas M. Zeuner
  • , Lorenzo M. Procopio
  • , Časlav Brukner
  • , Philip Walther
  • *Corresponding author for this work

Research output: Contribution to journalArticle (Academic Journal)peer-review

217 Citations (Scopus)

Abstract

Investigating the role of causal order in quantum mechanics has recently revealed that the causal relations of events may not be a priori well defined in quantum theory. Although this has triggered a growing interest on the theoretical side, creating processes without a causal order is an experimental task. We report the first decisive demonstration of a process with an indefinite causal order. To do this, we quantify how incompatible our setup is with a definite causal order by measuring a “causal witness.” This mathematical object incorporates a series of measurements that are designed to yield a certain outcome only if the process under examination is not consistent with any well-defined causal order. In our experiment, we perform a measurement in a superposition of causal orders—without destroying the coherence—to acquire information both inside and outside of a “causally nonordered process.” Using this information, we experimentally determine a causal witness, demonstrating by almost 7 SDs that the experimentally implemented process does not have a definite causal order.
Original languageEnglish
JournalSci. Adv.,
Volume3
Issue number3
DOIs
Publication statusPublished - 24 Mar 2017

Bibliographical note

11 pages + a 9-page Appendix; 5 figures + 5 in the Appendix. Corrected definitions of unitaries in Appendix

Research Groups and Themes

  • QETLabs
  • Quantum Engineering Technologies

Keywords

  • quant-ph

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