Many-body entanglement and topology from uncertainties and
measurement-induced modes
- URL: http://arxiv.org/abs/2111.15312v2
- Date: Tue, 14 Jun 2022 12:29:37 GMT
- Title: Many-body entanglement and topology from uncertainties and
measurement-induced modes
- Authors: Kim P\"oyh\"onen, Ali G. Moghaddam, Teemu Ojanen
- Abstract summary: We present universal characteristics of quantum entanglement and topology through virtual entanglement modes that fluctuate into existence in subsystem measurements.
For generic interacting systems, these modes give rise to a statistical uncertainty which corresponds to entanglement entropies.
In topological systems, the measurement-induced edge modes give rise to quantized and non-analytic uncertainties, providing easily accessible signatures of topology.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We present universal characteristics of quantum entanglement and topology
through virtual entanglement modes that fluctuate into existence in subsystem
measurements. For generic interacting systems and extensive conserved
quantities, these modes give rise to a statistical uncertainty which
corresponds to entanglement entropies. Consequently, the measurement-induced
modes provide directly observable route to entanglement and its scaling laws.
Moreover, in topological systems, the measurement-induced edge modes give rise
to quantized and non-analytic uncertainties, providing easily accessible
signatures of topology. Our work provides a much-needed direct method to probe
the performance of emerging quantum simulators to realize entangled and
topological states.
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