Superselection rules (SSRs) constrain the allowed states and operations in quantum theory. They limit preparations and measurements and hence impact our ability to observe non-locality, in particular the violation of Bell inequalities. We show that a reference frame compatible with a particle number SSR does not allow observers to violate a Bell inequality if and only if it is prepared using only local operations and classical communication. In particular, jointly prepared separable reference frames are sufficient for obtaining violations of a Bell inequality. We study the size and non-local properties of such reference frames using superselection-induced variance. These results suggest the need for experimental Bell tests in the presence of superselection.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Dehollain J.P.
Simmons S.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Simmons S.
Muhonen J.T.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Muhonen J.T.
Kalra R.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Kalra R.
Laucht A.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Laucht A.
Hudson F.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Hudson F.
Itoh K.M.
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School of Fundamental Science and Technology, Keio University, 3-14-1 HiyoshiCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Itoh K.M.
Jamieson D.N.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Jamieson D.N.
McCallum J.C.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
McCallum J.C.
Dzurak A.S.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
Dzurak A.S.
Morello A.
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Centre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW
School of Electrical Engineering and Telecommunications, UNSW Australia, Sydney, 2052, NSWCentre for Quantum Computation and Communication Technology, UNSW Australia, Sydney, 2052, NSW