Whether at the zero spin density m = 0 and finite temperatures T > 0 the spin stiffness of the spin-1/2 XXX chain is finite or vanishes remains an unsolved and controversial issue, as different approaches yield contradictory results. Here we explicitly compute the stiffness at m = 0 and find strong evidence that it vanishes. In particular, we derive an upper bound on the stiffness within a canonical ensemble at any fixed value of spin density m that is proportional to m2L in the thermodynamic limit of chain length L → ∞, for any finite, nonzero temperature, which implies the absence of ballistic transport for T > 0 for m = 0. Although our method relies in part on the thermodynamic Bethe ansatz (TBA), it does not evaluate the stiffness throu...
We consider the isotropic S=1 Heisenberg chain with a finite Haldane gap Δ and use state-of-the-art ...
Steinigeweg R, Schnalle R. Projection operator approach to spin diffusion in the anisotropic Heisenb...
Seminario de Materia Condensada -- Universidad de los Andes, Bogotá, 1 de febrero de 2022. -- Semina...
AbstractWhether in the thermodynamic limit, vanishing magnetic field h→0, and nonzero temperature th...
Whether in the thermodynamic limit, vanishing magnetic field h →0, and nonzero temperature the spin ...
We present a temperature and magnetic field dependence study of spin transport and magnetothermal co...
We investigate the low-temperature thermodynamics of the spin-1/2 Heisenberg chain with open ends. O...
This thesis studies transport properties of low-dimensional quantum spin systems with a particular f...
We study the energy transport between two interacting spin chains which are initially separated, hel...
We study thermal transport in one dimensional spin systems both in the presence and absence of impur...
We analyze the spin transport through a finite-size one-dimensional interacting wire connected to no...
This thesis contains two results for the low temperature behavior of quantum spin systems. ...
Typescript (photocopy).We present a quantum theory for both the ferromagnetic and antiferromagnetic ...
In this work we study the heat transport in an XXZ spin-1/2 Heisenberg chain with homogeneous magnet...
We present numerical results for the spin and thermal conductivity of one-dimensional (1D) quantum s...
We consider the isotropic S=1 Heisenberg chain with a finite Haldane gap Δ and use state-of-the-art ...
Steinigeweg R, Schnalle R. Projection operator approach to spin diffusion in the anisotropic Heisenb...
Seminario de Materia Condensada -- Universidad de los Andes, Bogotá, 1 de febrero de 2022. -- Semina...
AbstractWhether in the thermodynamic limit, vanishing magnetic field h→0, and nonzero temperature th...
Whether in the thermodynamic limit, vanishing magnetic field h →0, and nonzero temperature the spin ...
We present a temperature and magnetic field dependence study of spin transport and magnetothermal co...
We investigate the low-temperature thermodynamics of the spin-1/2 Heisenberg chain with open ends. O...
This thesis studies transport properties of low-dimensional quantum spin systems with a particular f...
We study the energy transport between two interacting spin chains which are initially separated, hel...
We study thermal transport in one dimensional spin systems both in the presence and absence of impur...
We analyze the spin transport through a finite-size one-dimensional interacting wire connected to no...
This thesis contains two results for the low temperature behavior of quantum spin systems. ...
Typescript (photocopy).We present a quantum theory for both the ferromagnetic and antiferromagnetic ...
In this work we study the heat transport in an XXZ spin-1/2 Heisenberg chain with homogeneous magnet...
We present numerical results for the spin and thermal conductivity of one-dimensional (1D) quantum s...
We consider the isotropic S=1 Heisenberg chain with a finite Haldane gap Δ and use state-of-the-art ...
Steinigeweg R, Schnalle R. Projection operator approach to spin diffusion in the anisotropic Heisenb...
Seminario de Materia Condensada -- Universidad de los Andes, Bogotá, 1 de febrero de 2022. -- Semina...