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Optimal Design and Simulation of a Cross-Plane Micro-Thermoelectric Generator

机译:跨平面微型热电发电机的最优设计与仿真

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This paper presents a new way to design a low-cost micro-thermoelectric generator (μ-TEG) which can be fabricated by using electrochemical and MEMS technology. The overall dimension of the μ-TEG is about 13mm × 13mm × 0.4mm, which contains 128 p- and n-type pairs of semiconductors connected electrically in series and thermally in parallel. The p-type antimony telluride (Sb_2Te_3) and n-type bismuth telluride (Bi_2Te_3) with an optimal thickness of 20μm were designed to deposit in a flexible polymer mold formed by photolithographic patterning of Polyimide (PI) with a three electrode configuration. Simulations of the thermocouple with PI mold were carried on, using finite element analysis. The analysis shows the possibility to achieve 3.5 mV while the difference in temperature is 10K and the thickness of the silicon substrate is 400μm, which reveals that the output power of the thermocouple without releasing process is only 4% lower than the one with the releasing process. Therefore the PI mold is not removed, considering the potential for easier fabrication and lower cost. The deposition parameters were also studied and optimized for the best thermoelectric performance. In our experiments, the n- and p-type semiconductors could be obtained when the voltage and current are around 50mV versus saturated calomel electrode (SCE) and 40 mA, respectively.
机译:本文介绍了一种设计低成本微电子发电机(μ-TEG)的新方法,可以通过使用电化学和MEMS技术来制造。 μ-TEG的总尺寸约为13mm×13mm×0.4mm,其包含128个P型和N型对半导体,并平行地电动连接。最佳厚度为20μm的p型锑碲化肽(Sb_2te_3)和n型铋(Bi_2te_3)被设计成沉积在通过具有三个电极构造的光刻图案化形成的柔性聚合物模具中。使用有限元分析进行了使用PI模具的热电偶模拟。该分析表明,实现3.5 mV的可能性,而温度差为10k,硅衬底的厚度为400μm,这表明热电偶的输出功率在没有释放过程的情况下仅比具有释放过程的4%低4% 。因此,考虑到更容易制造和更低的成本,不拆下PI模具。还研究了沉积参数并优化了最佳的热电性能。在我们的实验中,当电压和电流分别为饱和的Calomel电极(SCE)和40 mA时,可以获得N-和P型半导体。

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