Liu Xi, Zhao Peng, He Cheng-Yu, Wang Wei-Ming, Liu Bao-Hua, Lu Zhong-Wei, Wang Yun-Feng, Guo Hui-Xia, Liu Gang, Gao Xiang-Hu
School of Materials Science and Engineering, Lanzhou Jiaotong University, Lanzhou730070, China.
Laboratory of Clean Energy Chemistry and Materials, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou730000, China.
ACS Appl Mater Interfaces. 2022 Oct 26. doi: 10.1021/acsami.2c15215.
Harvesting solar energy to enhance thermoelectric generator efficiency is a highly effective strategy. However, it is a grand challenge but essential to increase solar-thermal conversion efficiency. A spectrally selective absorber, which is capable of boosting solar absorptance (α) while suppressing thermal emittance (ε), shows great potential to elevate the solar-thermal conversion efficiency. Herein, we fabricate a multilayer spectrally selective absorber with the assistance of high-entropy nitrides, which shows outstanding spectral selectivity (α/ε = 95.2/10.9%). Benefitting from the high-entropy nitrides, it is experimentally demonstrated that the as-deposited absorber exhibits superior thermal stability, which is crucial to ensure service life. Under 1000 W·m simulated solar illumination, it achieves a very high surface temperature of 109.6 °C, making it suitable to enhance the efficiency of solar thermoelectric generators. Impressively, the integration of the proposed absorber with a commercial thermoelectric generator efficiently reinforces thermoelectric performance, offering a high output power of 1.99 mW. More importantly, by taking advantage of a thermal concentration strategy, it enables a further increase of the output power by 2.98 mW. This work provides a promising solar-thermal material to boost high thermoelectric performance and extends the application category of high-entropy nitrides.
收集太阳能以提高热电发电机效率是一种非常有效的策略。然而,提高太阳能-热转换效率是一项巨大的挑战,但至关重要。一种光谱选择性吸收器,能够提高太阳能吸收率(α)同时抑制热发射率(ε),在提高太阳能-热转换效率方面显示出巨大潜力。在此,我们借助高熵氮化物制备了一种多层光谱选择性吸收器,其显示出出色的光谱选择性(α/ε = 95.2/10.9%)。受益于高熵氮化物,实验证明沉积态吸收器具有优异的热稳定性,这对于确保使用寿命至关重要。在1000 W·m模拟太阳光照下,它实现了109.6 °C的非常高的表面温度,使其适合提高太阳能热电发电机的效率。令人印象深刻的是,将所提出的吸收器与商用热电发电机集成有效地增强了热电性能,提供了1.99 mW的高输出功率。更重要的是,通过采用热浓缩策略,它能够使输出功率进一步增加2.98 mW。这项工作提供了一种有前景的太阳能-热材料,以提高高热电性能,并扩展了高熵氮化物的应用类别。