Infrared catastrophe and tunneling into strongly correlated electron systems: Beyond the x-ray edge limit
نویسندگان
چکیده
We develop a nonperturbative method to calculate the electron propagator in low-dimensional and strongly correlated electron systems. The method builds on our earlier work using a Hubbard-Stratonovich transformation to map the tunneling problem to the x-ray edge problem, which accounts for the infrared catastrophe caused by the sudden introduction of a new electron into a conductor during a tunneling event. Here we use a cumulant expansion to include fluctuations about this x-ray edge limit. We find that the dominant effect of electron-electron interaction at low energies is to correct the noninteracting Green’s function by a factor e−S/ , where S can be interpreted as the Euclidean action for a density field describing the time-dependent charge distribution of the newly added electron. Initially localized, this charge distribution spreads in time as the electron is accommodated by the host conductor, and during this relaxation process action is accumulated according to classical electrostatics with a screened interaction. The theory applies to lattice or continuum models of any dimensionality, with or without translational invariance. In one dimension the method correctly predicts a power-law density of states for electrons with short-range interaction and no disorder, and when applied to the solvable Tomonaga-Luttinger model, the exact density of states is obtained.
منابع مشابه
ar X iv : c on d - m at / 0 50 96 17 v 1 2 3 Se p 20 05 Infrared catastrophe and tunneling into strongly correlated electron systems : Beyond the x - ray edge limit
We develop a nonperturbative method to calculate the electron propagator in low-dimensional and strongly correlated electron systems. The method builds on our earlier work using a HubbardStratonovich transformation to map the tunneling problem to the x-ray edge problem, which accounts for the infrared catastrophe caused by the sudden introduction of a new electron into a conductor during a tunn...
متن کاملInfrared catastrophe and tunneling into strongly correlated electron systems: Perturbative x-ray edge limit
The tunneling density of states exhibits anomalies cusps, algebraic suppressions, and pseudogaps at the Fermi energy in a wide variety of low-dimensional and strongly correlated electron systems. We argue that in many cases these spectral anomalies are caused by an infrared catastrophe in the screening response to the sudden introduction of a new electron into the system during a tunneling even...
متن کاملResonant soft X-ray scattering, stripe order, and the electron spectral function in cuprates
We review the current state of efforts to use resonant soft X-ray scattering (RSXS), which is an elastic, momentum-resolved, valence band probe of strongly correlated electron systems, to study stripe-like phenomena in copper-oxide superconductors and related materials. We review the historical progress including RSXS studies of Wigner crystallization in spin ladder materials, stripe order in 2...
متن کاملTunneling into a Fractional Quantum Hall System and the Infrared Catastrophe
We calculate the tunneling density of states of a two-dimensional interacting electron gas in a quantizing magnetic field. We show that the observed pseudogap in the density of states can be understood as the result of an infrared catastrophe in a noninteracting electron model. This catastrophe stems from the response of an electronic system to the potential produced by the abruptly added charg...
متن کاملMössbauer, the X-ray Edge, and Macroscopic Quantum Effects
We discuss materials science examples of quantum phenomena embedded in a macroscopic, classical world. We present simple derivations showing the effects of the external world on gammaray emission (the Mössbauer effect), X-ray absorbtion (the overlap catastrophe), and on tunneling (macroscopic quantum tunneling and the Kondo effect). We draw some experimental lessons about the role of the extern...
متن کامل