A variety of ‘strange metals’ exhibit resistivity that decreases linearly with temperature as the temperature decreases to zero1,2,3, in contrast to conventional metals where resistivity decreases quadratically with temperature. This linear-in-temperature resistivity has been attributed to charge carriers scattering at a rate given by ħ/τ = αkBT, where α is a constant of order unity, ħ is the Planck constant and kB is the Boltzmann constant. This simple relationship between the scattering rate and temperature is observed across a wide variety of materials, suggesting a fundamental upper limit on scattering—the ‘Planckian limit’4,5—but little is known about the underlying origins of this limit. Here we report a measurement of the angle-depen...
The strange-metal phase of cuprate superconductors exhibits a linear in temperature resistivity, how...
Strange metal behavior refers to a linear temperature dependence of the electrical resistivity at te...
It is shown that the linear resistivity dependence on temperature for metals above the Debye’s tempe...
A variety of ‘strange metals’ exhibit resistivity that decreases linearly with temperature as the te...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
In various "strange" metals, electrons undergo Planckian dissipation, a strong and anomalous scatter...
Strange metal behavior refers to a linear temperature dependence of the electrical resistivity that ...
The strange-metal phase of cuprate superconductors exhibits a linear in temperature resistivity, how...
Strange metal behavior refers to a linear temperature dependence of the electrical resistivity at te...
It is shown that the linear resistivity dependence on temperature for metals above the Debye’s tempe...
A variety of ‘strange metals’ exhibit resistivity that decreases linearly with temperature as the te...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
International audienceThe perfectly linear temperature dependence of the electrical resistivity obse...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
Many exotic compounds, such as cuprate superconductors and heavy fermion materials, exhibit a linear...
In various "strange" metals, electrons undergo Planckian dissipation, a strong and anomalous scatter...
Strange metal behavior refers to a linear temperature dependence of the electrical resistivity that ...
The strange-metal phase of cuprate superconductors exhibits a linear in temperature resistivity, how...
Strange metal behavior refers to a linear temperature dependence of the electrical resistivity at te...
It is shown that the linear resistivity dependence on temperature for metals above the Debye’s tempe...