Machine learning reveals features of spinon Fermi surface
- URL: http://arxiv.org/abs/2306.03143v2
- Date: Mon, 11 Mar 2024 15:46:57 GMT
- Title: Machine learning reveals features of spinon Fermi surface
- Authors: Kevin Zhang, Shi Feng, Yuri D. Lensky, Nandini Trivedi, Eun-Ah Kim
- Abstract summary: We show that a Quantum-Classical hybrid approach (QuCl) of mining sampled projective snapshots can unveil signatures of seemingly featureless quantum states.
We use the correlator convolutional neural network, trained on labeled projective snapshots, in conjunction with regularization path analysis to identify signatures of phases.
We also identify a signature of the IGP in the spin channel perpendicular to the field direction, which we interpret as a signature of Friedel oscillations of gapless spinons forming a Fermi surface.
- Score: 5.109791215157213
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: With rapid progress in simulation of strongly interacting quantum
Hamiltonians, the challenge in characterizing unknown phases becomes a
bottleneck for scientific progress. We demonstrate that a Quantum-Classical
hybrid approach (QuCl) of mining sampled projective snapshots with
interpretable classical machine learning can unveil signatures of seemingly
featureless quantum states. The Kitaev-Heisenberg model on a honeycomb lattice
under external magnetic field presents an ideal system to test QuCl, where
simulations have found an intermediate gapless phase (IGP) sandwiched between
known phases, launching a debate over its elusive nature. We use the correlator
convolutional neural network, trained on labeled projective snapshots, in
conjunction with regularization path analysis to identify signatures of phases.
We show that QuCl reproduces known features of established phases.
Significantly, we also identify a signature of the IGP in the spin channel
perpendicular to the field direction, which we interpret as a signature of
Friedel oscillations of gapless spinons forming a Fermi surface. Our
predictions can guide future experimental searches for spin liquids.
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