Phononic crystal (PnC) membranes are a promising solution to improve sensitivity of bolometric sensor devices operating at low temperatures. Previous work has concentrated only on tuning thermal conductance, but significant changes to the heat capacity are also expected due to the modification of the phonon modes. Here, we calculate the area-specific heat capacity for thin (37.5 - 300 nm) silicon and silicon nitride PnC membranes with cylindrical hole patterns of varying period, in the temperature range 1 - 350 mK. We compare the results to two- and three-dimensional Debye models, as the 3D Debye model is known to give an accurate estimate for the low-temperature heat capacity of a bulk sample. We found that thin PnC membranes do n...
The highly reduced thermal conductivity arising from confinement of acoustic phonons and enhanced p...
In this work, we propose a nanoscale three-dimensional (3D) Si phononic crystal (PnC) with spherical...
The “textbook” phonon mean free path of heat carrying phonons in silicon at room temperature is ∼40 ...
Specific heat of phonon cavities is investigated in order to analyse the effect of phonon confinemen...
International audienceWe characterize nanometer-thin suspended silicon membranes in the pristine sta...
The specific heat of phonon cavities is investigated in order to analyze the effect of phonon confin...
International audienceSpecific heat of phonon cavities is investigated in order to analyse the effec...
In a previous publication1, we discussed the formalism and some computational re-sults for phononic ...
International audienceUnderstanding how thermal-phonon paths can be shaped is key for controlling he...
International audienceThe wealth of technological patterning technologies of deca-nanometer resoluti...
Phonon modes and their dispersion relations in ultrathin homogeneous dielectric membranes are calcul...
We present a specific heat measurement technique adapted to thin or very thin suspended membranes fr...
International audienceThermoelectricity struggles with the lack of cheap, abundant, and environmenta...
Silicon is currently the major semiconductor material for ICT and will probably sustain the Moore's ...
In this article, we present numerically and experimentally a tunable phononic membrane as an efficie...
The highly reduced thermal conductivity arising from confinement of acoustic phonons and enhanced p...
In this work, we propose a nanoscale three-dimensional (3D) Si phononic crystal (PnC) with spherical...
The “textbook” phonon mean free path of heat carrying phonons in silicon at room temperature is ∼40 ...
Specific heat of phonon cavities is investigated in order to analyse the effect of phonon confinemen...
International audienceWe characterize nanometer-thin suspended silicon membranes in the pristine sta...
The specific heat of phonon cavities is investigated in order to analyze the effect of phonon confin...
International audienceSpecific heat of phonon cavities is investigated in order to analyse the effec...
In a previous publication1, we discussed the formalism and some computational re-sults for phononic ...
International audienceUnderstanding how thermal-phonon paths can be shaped is key for controlling he...
International audienceThe wealth of technological patterning technologies of deca-nanometer resoluti...
Phonon modes and their dispersion relations in ultrathin homogeneous dielectric membranes are calcul...
We present a specific heat measurement technique adapted to thin or very thin suspended membranes fr...
International audienceThermoelectricity struggles with the lack of cheap, abundant, and environmenta...
Silicon is currently the major semiconductor material for ICT and will probably sustain the Moore's ...
In this article, we present numerically and experimentally a tunable phononic membrane as an efficie...
The highly reduced thermal conductivity arising from confinement of acoustic phonons and enhanced p...
In this work, we propose a nanoscale three-dimensional (3D) Si phononic crystal (PnC) with spherical...
The “textbook” phonon mean free path of heat carrying phonons in silicon at room temperature is ∼40 ...