Ferrofluids are colloids of superparamagnetic nanoparticles that are envisaged for use in hyperthermia, which is based on nonradiative relaxation after interaction with a high-frequency magnetic field or light. For such applications, an important parameter is the thermal diffusivity. In this communication, we present an experimental study of the dependence of thermal diffusivity of ferrofluids on the size of the magnetite nanoparticles by employing the mode-mismatched thermal lens technique. The results show a huge enhancement of the thermal diffusivity by increasing the average size of the nanoparticles, while the number density of the nanoparticles is maintained as constant
O presente trabalho investiga o fenômeno termodifusivo em dispersões coloidais de nanopartículas mag...
Reasoning of particular mechanism of anomalous thermal transport behaviors is not identified yet for...
Our objective is to understand how the magnetic properties of nanoparticles (NPs) can be affected by...
The heat produced by magnetic nanoparticles, when they are submitted to a time-varying magnetic fiel...
A dual beam mode-mismatched thermal lens method has been employed to investigate the dependence of t...
We investigate the magnetic nanoparticles hyperthermia in a non-adiabatic and radiating process thro...
A magnetic-field-induced diffraction pattern was studied by a new technique: thermal lens coupled ma...
To probe the effect of particle size on thermal conductivity (<i>k</i>) enhancement in nanofluids, e...
Loss mechanisms in fluid heating of cobalt ferrite (CFO) nanoparticles and CFO–Pd heterodimer colloi...
Reasoning of particular mechanism of anomalous thermal transport behaviors is not identified yet fo...
© 2021, The Author(s). Studies highlighting nanoparticles suspensions and flow attributes in the con...
Abstract: Nanofluids have novel properties that make them potentially useful in many heat transfer a...
Common heat transfer fluids have low thermal conductivities, which decrease their efficiency in many...
Loss mechanisms in fluid heating of cobalt ferrite (CFO) nanoparticles and CFO–Pd heterodimer colloi...
It has been a hot issue to enhance the thermal conductivity of a fluid with nanoparticles, i.e. nano...
O presente trabalho investiga o fenômeno termodifusivo em dispersões coloidais de nanopartículas mag...
Reasoning of particular mechanism of anomalous thermal transport behaviors is not identified yet for...
Our objective is to understand how the magnetic properties of nanoparticles (NPs) can be affected by...
The heat produced by magnetic nanoparticles, when they are submitted to a time-varying magnetic fiel...
A dual beam mode-mismatched thermal lens method has been employed to investigate the dependence of t...
We investigate the magnetic nanoparticles hyperthermia in a non-adiabatic and radiating process thro...
A magnetic-field-induced diffraction pattern was studied by a new technique: thermal lens coupled ma...
To probe the effect of particle size on thermal conductivity (<i>k</i>) enhancement in nanofluids, e...
Loss mechanisms in fluid heating of cobalt ferrite (CFO) nanoparticles and CFO–Pd heterodimer colloi...
Reasoning of particular mechanism of anomalous thermal transport behaviors is not identified yet fo...
© 2021, The Author(s). Studies highlighting nanoparticles suspensions and flow attributes in the con...
Abstract: Nanofluids have novel properties that make them potentially useful in many heat transfer a...
Common heat transfer fluids have low thermal conductivities, which decrease their efficiency in many...
Loss mechanisms in fluid heating of cobalt ferrite (CFO) nanoparticles and CFO–Pd heterodimer colloi...
It has been a hot issue to enhance the thermal conductivity of a fluid with nanoparticles, i.e. nano...
O presente trabalho investiga o fenômeno termodifusivo em dispersões coloidais de nanopartículas mag...
Reasoning of particular mechanism of anomalous thermal transport behaviors is not identified yet for...
Our objective is to understand how the magnetic properties of nanoparticles (NPs) can be affected by...