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Quantum test of the equivalence principle for atoms in superpositions of internal energy eigenstates
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abstract
The Einstein Equivalence Principle (EEP) has a central role in the understanding of gravity and space-time. In its weak form, or Weak Equivalence Principle (WEP), it directly implies equivalence between inertial and gravitational mass. Verifying this principle in a regime where the relevant properties of the test body must be described by quantum theory has profound implications. Here we report on a novel WEP test for atoms. A Bragg atom interferometer in a gravity gradiometer configuration compares the free fall of rubidium atoms prepared in two hyperfine states and in their coherent superposition. The use of the superposition state allows testing genuine quantum aspects of EEP with no classical analogue, which have remained completely unexplored so far. In addition, we measure the Eotvos ratio of atoms in two hyperfine levels with relative uncertainty in the low $10^{-9}$, improving previous results by almost two orders of magnitude.
Forward citations
Cited by 2 Pith papers
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Mach's principle in atomic transitions
Atomic transition probabilities in two atom-mirror circular motion setups are equivalent under field frequency interchange and interpreted as a semi-classical analog to Mach's principle.
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AION-10: Technical Design Report for a 10m Atom Interferometer in Oxford
AION-10 is a 10 m strontium atom interferometer design whose structural, magnetic, and vacuum analyses are presented as meeting the precision requirements for quantum sensing and fundamental physics searches.
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