Spin Echo, Fidelity, and the Quantum Critical Fan in TmVO_{4}

Using spin-echo nuclear magnetic resonance in the model transverse field Ising system TmVO_{4}, we show that low frequency quantum fluctuations at the quantum critical point have a very different effect on ^{51}V nuclear spins than classical low-frequency noise or fluctuations that arise at a finite...

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Veröffentlicht in:Physical review letters 2024-05, Vol.132 (21), p.216502-216502
Hauptverfasser: Nian, Y-H, Vinograd, I, Green, T, Chaffey, C, Massat, P, Singh, R R P, Zic, M P, Fisher, I R, Curro, N J
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container_end_page 216502
container_issue 21
container_start_page 216502
container_title Physical review letters
container_volume 132
creator Nian, Y-H
Vinograd, I
Green, T
Chaffey, C
Massat, P
Singh, R R P
Zic, M P
Fisher, I R
Curro, N J
description Using spin-echo nuclear magnetic resonance in the model transverse field Ising system TmVO_{4}, we show that low frequency quantum fluctuations at the quantum critical point have a very different effect on ^{51}V nuclear spins than classical low-frequency noise or fluctuations that arise at a finite temperature critical point. Spin echoes filter out the low-frequency classical noise but not the quantum fluctuations. This allows us to directly visualize the quantum critical fan and demonstrate the persistence of quantum fluctuations at the critical coupling strength in TmVO_{4} to high temperatures in an experiment that remains transparent to finite temperature classical phase transitions. These results show that while dynamical decoupling schemes can be quite effective in eliminating classical noise in a qubit, a quantum critical environment may lead to rapid entanglement and decoherence.
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title Spin Echo, Fidelity, and the Quantum Critical Fan in TmVO_{4}
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