Energies, Vol. 19, Pages 1319: Tailoring Anisotropic Thermal Conductivity in Hollow Tellurium Nanowires via Surface Palladium Decoration for Energy Applications
Energies, Vol. 19, Pages 1319: Tailoring Anisotropic Thermal Conductivity in Hollow Tellurium Nanowires via Surface Palladium Decoration for Energy Applications
Energies doi: 10.3390/en19051319
Authors:
Keisuke Uchida
Keisuke Kaneko
Yoshiyuki Shinozaki
Masayuki Takashiri
Directional control of heat flow is essential for advanced energy and electronic systems, yet strategies for tuning anisotropic phonon transport in low-dimensional materials remain limited. Hollow tellurium (Te) nanowires were synthesized via a solvothermal method and modified through Pd electroless plating to achieve tunable anisotropic thermal transport. Structural analyses confirmed Pd incorporation as nanoscale surface deposits without crystalline Pd phases, while SEM observations revealed cavity enlargement due to galvanic displacement at higher PdCl2 concentrations. Bulk films prepared by cold pressing exhibited direction-dependent behavior. Thermal conductivities remained nearly unchanged below 2.2 mM PdCl2, but at 5.5 mM, the in-plane value increased to 2.14 W/(m·K) and the cross-plane value decreased to 0.39 W/(m·K), enhancing the anisotropy ratio from 2.71 to 5.49. This divergence arises from direction-selective phonon scattering, where Pd-rich regions promote in-plane heat flow while junction irregularity suppresses cross-plane transport. These results demonstrate a controllable approach for engineering anisotropic thermal properties in functional energy materials.
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