Thermoelectric Power Generation of TiS2/Organic Hybrid Superlattices Below Room Temperature

塞贝克系数 热电效应 材料科学 超晶格 大气温度范围 电阻率和电导率 热电发电机 光电子学 功率密度 分析化学(期刊) 电子迁移率 发电 温度梯度 功率(物理) 电气工程 热导率 化学 复合材料 热力学 物理 有机化学 气象学 工程类
作者
Numan Salah,Neazar Baghdadi,Shittu Abdullahi,Ahmed Alshahrie,Kunihito Koumoto
出处
期刊:Nanomaterials [MDPI AG]
卷期号:13 (4): 781-781
标识
DOI:10.3390/nano13040781
摘要

Recently, the n-type TiS2/organic hybrid superlattice (TOS) was found to have efficient thermoelectric (TE) properties above and near room temperature (RT). However, its TE performance and power generation at the temperature gradient below RT have not yet been reported. In this work, the TE performance and power generation of the TOS above and below RT were investigated. The electrical conductivity (σ) and Seebeck coefficient (S) were recorded as a function of temperature within the range 233-323 K. The generated power at temperature gradients above (at ΔT = 20 and 40 K) and below (at ΔT = -20 and -40 K) RT was measured. The recorded σ decreased by heating the TOS, while |S| increased. The resulting power factor recorded ~100 µW/mK2 at T = 233 K with a slight increase following heating. The charge carrier density and Hall mobility of the TOS showed opposite trends. The first factor significantly decreased after heating, while the second one increased. The TE-generated power of a single small module made of the TOS at ΔT = 20 and 40 K recorded 10 and 45 nW, respectively. Surprisingly, the generated power below RT is several times higher than that generated above RT. It reached 140 and 350 nW at ΔT = -20 and -40 K, respectively. These remarkable results indicate that TOS might be appropriate for generating TE power in cold environments below RT. Similar TE performances were recorded from both TOS films deposited on solid glass and flexible polymer, indicating TOS pertinence for flexible TE devices.

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