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Slowest local operators in quantum spin chains

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arxiv 1410.4186 v2 pith:UZEQ2SFL submitted 2014-10-15 cond-mat.stat-mech cond-mat.otherquant-ph

classification cond-mat.stat-mechcond-mat.otherquant-ph
keywords operatorschainoperatorrelaxationfindfrobeniuslocalnorm
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abstract

We numerically construct slowly relaxing local operators in a nonintegrable spin-1/2 chain. Restricting the support of the operator to $M$ consecutive spins along the chain, we exhaustively search for the operator that minimizes the Frobenius norm of the commutator with the Hamiltonian. We first show that the Frobenius norm bounds the time scale of relaxation of the operator at high temperatures. We find operators with significantly slower relaxation than the slowest simple "hydrodynamic" mode due to energy diffusion. Then, we examine some properties of the nontrivial slow operators. Using both exhaustive search and tensor network techniques, we find similar slowly relaxing operators for a Floquet spin chain; this system is hydrodynamically "trivial", with no conservation laws restricting their dynamics. We argue that such slow relaxation may be a generic feature following from locality and unitarity.

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  1. Wavefunction branches demand a definition!

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    A perspective comparing two quantum-complexity definitions of wavefunction branches, finding neither satisfactory and identifying the open problems that remain.

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