Fluctuation-Dissipation in Thermoelectrics
arXiv:2201.05303 · doi:10.1209/0295-5075/acb009
Abstract
Thermoelectric materials exhibit correlated transport of charge and heat. The Johnson-Nyquist noise formula for spectral density of voltage fluctuations accounts for fluctuations associated solely with Ohmic dissipation. Applying the fluctuation-dissipation theorem, we generalize the Johnson-Nyquist formula for thermoelectrics, finding an enhanced voltage fluctuation spectral density at frequencies below a thermal cut-off frequency , where is the dimensionless thermoelectric material figure of merit. The origin of the enhancement in voltage noise is thermoelectric coupling of temperature fluctuations. We use a wideband ( kHz), integrated thermoelectric micro-device to experimentally confirm our findings. Measuring the enhanced voltage noise, we experimentally resolve temperature fluctuations with an amplitude of at a mean temperature of 295 K. We find that thermoelectric devices can be used for thermometry with sufficient resolution to measure the fundamental temperature fluctuations described by the fluctuation-dissipation theorem.
References in corpus (7)
- Temperature in and out of equilibrium: a review of concepts, tools and attempts
- Nonlinear thermoelectricity with electron-hole symmetric systems
- Probing charge and heat current noise by frequency-dependent temperature and potential fluctuations
- Electronic heat current fluctuations in a quantum dot
- Noise effects in the nonlinear thermoelectricity of a Josephson junction
- Non-Gaussian Current Fluctuations in a Short Diffusive Conductor
- Dynamical I-V Characteristics of SNS Junctions