English

Crystalline topological defects within response theory

Strongly Correlated Electrons 2024-07-02 v2 Disordered Systems and Neural Networks Materials Science

Abstract

Crystal defects can highlight interesting quantum features by coupling to the low-energy Hamiltonian HH. Here we show that independently of this HH coupling, topological crystalline defects can generate new features by directly modifying the response theory of electric field probes such as Raman scattering. To show this we consider an antiferromagnetic spin-1/2 model HspinH_{spin} on a zigzag chain. Crystalline domain walls between two zigzag domains appear as at most local defects in HspinH_{spin}, but as topological (not locally creatable) defects in the Raman operator RR of inelastic photon scattering. Using time evolving block decimation (TEBD) numerics, mean field, and bosonization, we show that a finite density of crystalline domain walls shifts the entire Raman signal to produce an effective gap. This lattice-defect-induced Raman gap closes and reopens in applied magnetic fields. We discuss the effect in terms of photons sensing the lattice defects within RR as spin-dimerization domain walls, with Z2Z_2 character, and a resulting shift of the probed wavevector from q=0q=0 to π+δq\pi+\delta q, giving an O(1)\textit{O}(1) change in contrast to local defects. The magneto-Raman singularity from topological lattice defects here relies on the HspinH_{spin} spinon liquid state, suggesting future applications using lattice topological defects to modify response-theory operators independently of HH and thereby generate new probes of quantum phases.

Keywords

Cite

@article{arxiv.2311.00698,
  title  = {Crystalline topological defects within response theory},
  author = {Sami Hakani and Itamar Kimchi},
  journal= {arXiv preprint arXiv:2311.00698},
  year   = {2024}
}

Comments

19 pages, 8 figures. v2: revised for clarity and expanded discussion of anisotropy

R2 v1 2026-06-28T13:08:51.858Z