spin observable
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Universe ◽  
2021 ◽  
Vol 7 (8) ◽  
pp. 293
Author(s):  
Victor A. S. V. Bittencourt ◽  
Alex E. Bernardini ◽  
Massimo Blasone

Dirac bispinors belong to an irreducible representation of the complete Lorentz group, which includes parity as a symmetry yielding two intrinsic discrete degrees of freedom: chirality and spin. For massive particles, chirality is not dynamically conserved, which leads to chiral oscillations. In this contribution, we describe the effects of this intrinsic structure of Dirac bispinors on the quantum entanglement encoded in a lepton-antineutrino pair. We consider that the pair is generated through weak interactions, which are intrinsically chiral , such that in the initial state the lepton and the antineutrino have definite chirality but their spins are entangled. We show that chiral oscillations induce spin entanglement oscillations and redistribute the spin entanglement to chirality-spin correlations. Such a phenomenon is prominent if the momentum of the lepton is comparable with or smaller than its mass. We further show that a Bell-like spin observable exhibits the same behavior of the spin entanglement. Such correlations do not require the knowledge of the full density matrix. Our results show novel effects of the intrinsic bispinor structure and can be used as a basis for designing experiments to probe chiral oscillations via spin correlation measurements.


Proceedings ◽  
2019 ◽  
Vol 12 (1) ◽  
pp. 47
Author(s):  
Francesco Albarelli ◽  
Matteo A. C. Rossi ◽  
Dario Tamascelli ◽  
Marco G. Genoni

We review some recent results regarding the use of time-continuous measurements for quantum-enhanced metrology. First, we present the underlying quantum estimation framework and elucidate the correct figures of merit to employ. We then report results from two previous works where the system of interest is an ensemble of two-level atoms (qubits) and the quantity to estimate is a magnetic field along a known direction (a frequency). In the first case, we show that, by continuously monitoring the collective spin observable transversal to the encoding Hamiltonian, we get Heisenberg scaling for the achievable precision (i.e., 1 / N for N atoms); this is obtained for an uncorrelated initial state. In the second case, we consider independent noises acting separately on each qubit and we show that the continuous monitoring of all the environmental modes responsible for the noise allows us to restore the Heisenberg scaling of the precision, given an initially entangled GHZ state.


Entropy ◽  
2018 ◽  
Vol 20 (11) ◽  
pp. 829 ◽  
Author(s):  
Andrei Khrennikov ◽  
Elena Loubenets

We introduce the general class of symmetric two-qubit states guaranteeing the perfect correlation or anticorrelation of Alice and Bob outcomes whenever some spin observable is measured at both sites. We prove that, for all states from this class, the maximal violation of the original Bell inequality is upper bounded by 3 2 and specify the two-qubit states where this quantum upper bound is attained. The case of two-qutrit states is more complicated. Here, for all two-qutrit states, we obtain the same upper bound 3 2 for violation of the original Bell inequality under Alice and Bob spin measurements, but we have not yet been able to show that this quantum upper bound is the least one. We discuss experimental consequences of our mathematical study.


2013 ◽  
Vol 330 ◽  
pp. 263-272 ◽  
Author(s):  
P. Caban ◽  
J. Rembieliński ◽  
M. Włodarczyk

1995 ◽  
Author(s):  
D. Prout ◽  
E. Sugarbaker ◽  
S. Delucia ◽  
D. Cooper ◽  
B. Luther ◽  
...  

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