paper

Nonvanishing Energy Scales at the Quantum Critical Point of CeCoIn5

arXiv:cond-mat/0605124 · doi:10.1103/PhysRevLett.97.106606

Abstract

Heat and charge transport were used to probe the magnetic field-tuned quantum critical point in the heavy-fermion metal CeCoIn. A comparison of electrical and thermal resistivities reveals three characteristic energy scales. A Fermi-liquid regime is observed below , with both transport coefficients diverging in parallel and as , the critical field. The characteristic temperature of antiferromagnetic spin fluctuations, , is tuned to a minimum but {\it finite} value at , which coincides with the end of the -linear regime in the electrical resistivity. A third temperature scale, , signals the formation of quasiparticles, as fermions of charge obeying the Wiedemann-Franz law. Unlike , it remains finite at , so that the integrity of quasiparticles is preserved, even though the standard signature of Fermi-liquid theory fails.

4 pages, 4 figures (published version)