Optimal thermal rectification of heterojunctions under Fourier law
Yu Yang, Hong‐Yuan Chen, Huan Wang, Nianbei Li, Lifa Zhang
Abstract
Yu Yang, Hong‐Yuan Chen, Huan Wang, Nianbei Li, Lifa Zhang
Abstract
The macroscopic heterojunction materials under Fourier law can present a thermal rectification effect due to their asymmetrical property, where the opposite temperature dependence of thermal conductivity for two junctions plays a important role. Here we investigate the relation between the rectification ratio and the coefficients of the temperature-dependent thermal conductivities of the junctions. For heterojunction materials with linear temperature-dependent thermal conductivities, the maximal rectification ratio is predicted to be 0.5. For the quadratic temperature-dependent--thermal-conductivity case, the maximal rectification ratio can be improved to about 0.86. The thermal rectification can asymptotically approach a maximum value of 1 for high-order--temperature-dependent cases. To obtain the optimal thermal rectification, we present a temperature-dependent thermal-conductivity function law which gives practical guidance for searching an ideal thermal diode.
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The macroscopic heterojunction materials under Fourier law can present a thermal rectification effect due to their asymmetrical property, where the opposite temperature dependence of thermal conductivity for two junctions plays a important role. Here we investigate the relation between the rectification ratio and the coefficients of the temperature-dependent thermal conductivities of the junctions. For heterojunction materials with linear temperature-dependent thermal conductivities, the maximal rectification ratio is predicted to be 0.5. For the quadratic temperature-dependent--thermal-conductivity case, the maximal rectification ratio can be improved to about 0.86. The thermal rectification can asymptotically approach a maximum value of 1 for high-order--temperature-dependent cases. To obtain the optimal thermal rectification, we present a temperature-dependent thermal-conductivity function law which gives practical guidance for searching an ideal thermal diode.
Key concepts: Rectification, Thermal conductivity, Materials science, Thermal, Heterojunction, Fourier transform, Thermodynamics, Condensed matter physics