Kwon Oju, Kim Minsu, Park Dabin, Kim Jooheon
School of Chemical Engineering, Chung-Ang University, Seoul 06974, Republic of Korea.
Department of Mechanical and Aerospace Engineering, University of California, Irvine, California 92679, USA.
Dalton Trans. 2024 Sep 18;53(36):15305-15315. doi: 10.1039/d4dt02048k.
Thermoelectric (TE) energy harvesting presents a viable method for reducing energy waste by transforming waste thermal energy into electricity. In this study, we fabricated copper iodide (CuI) composites using synthesized CuI nanowires (NWs) and particles to enhance TE performance in the low-temperature range. The Seebeck coefficient () was notably higher when a combination of CuI particles and NWs was used, reaching a maximum of 1614.24 μV K with a 60% NWs content at RT. Electrical conductivity () exhibited an inverse correlation with , with higher values detected when either particles or NWs were used only. The highest power factor (PF) of 128.44 μW mK was recorded at RT with 60% NWs content, demonstrating improved TE performance. Thermal conductivity () diminished when different material structures were employed, enhancing phonon scattering. The maximum figure of merit () achieved was ∼0.14 with 60% NWs content at 425 K, indicating the potential of this method for improving TE performance. This study offers valuable insights into optimizing TE performance using CuI composites, proposing a promising strategy for energy harvesting from low-temperature sources.
热电(TE)能量收集通过将废热能转化为电能,提供了一种减少能源浪费的可行方法。在本研究中,我们使用合成的碘化铜(CuI)纳米线(NWs)和颗粒制备了CuI复合材料,以提高低温范围内的TE性能。当使用CuI颗粒和NWs的组合时,塞贝克系数()显著更高,在室温下NWs含量为60%时达到最大值1614.24 μV K。电导率()与呈负相关,仅使用颗粒或NWs时检测到的值更高。在室温下NWs含量为60%时,记录到最高功率因数(PF)为128.44 μW mK,表明TE性能有所改善。当采用不同的材料结构时,热导率()降低,增强了声子散射。在425 K时,NWs含量为60%时实现的最大优值()约为0.14,表明该方法在提高TE性能方面的潜力。本研究为使用CuI复合材料优化TE性能提供了有价值的见解,提出了一种从低温源收集能量的有前景的策略。