Liu Meiling, Li Xiansheng, Li Liang, Zhao Shanguang, Zhu Jinglin, Zhou Ting, Lin Zhihan, Li Jianjun, Sun Bowen, Pei Gang, Zhao Bin, Zou Chongwen
National Synchrotron Radiation Laboratory, School of Nuclear Science and Technology, University of Science and Technology of China, Hefei, Anhui, 230029, P. R. China.
Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei, Anhui, 230027, P. R. China.
Small. 2024 Aug;20(35):e2403020. doi: 10.1002/smll.202403020. Epub 2024 May 28.
Energy conversion from the environment into electricity is the most direct and effective electricity source to sustainably power off-grid electronics, once the electricity requirement exceeds the capability of traditional centralized power supply systems. Normally photovoltaic cells have enabled distributed power generation during the day, but do not work at night. Thus, efficient electricity generation technologies for a sustainable all-day power supply with no necessity for energy storage remain a challenge. Herein, an innovative all-day power generation strategy is reported, which self-adaptively integrates the diurnal photothermal and nocturnal radiative cooling processes into the thermoelectric generator (TEG) via the spectrally dynamic modulated coating, to continuously harvest the energy from the hot sun and the cold universe for power generation. Synergistic with the optimized latent heat phase change material, the electricity generation performance of the TEG is dramatically enhanced, with a maximum power density exceeding 1000 mW m during the daytime and up to 25 mW m during the nighttime, corresponding to an improvement of 123.1% and 249.1%, compared with the conventional strategy. This work maximizes the utilization of ambient energy resources to provide an environmentally friendly and uninterrupted power generation strategy. This opens up new possibilities for sustained power generation both daytime and nighttime.
一旦电力需求超过传统集中供电系统的能力,将环境中的能量转换为电能是为离网电子设备可持续供电的最直接、最有效的电源。通常,光伏电池在白天能够实现分布式发电,但在夜间无法工作。因此,开发一种无需能量存储即可实现全天可持续供电的高效发电技术仍然是一项挑战。在此,我们报道了一种创新的全天发电策略,该策略通过光谱动态调制涂层将日间光热和夜间辐射冷却过程自适应地集成到热电发电机(TEG)中,以持续从炽热的太阳和寒冷的宇宙中获取能量进行发电。与优化的潜热相变材料协同作用,TEG的发电性能显著提高,白天最大功率密度超过1000 mW/m²,夜间高达25 mW/m²,与传统策略相比,分别提高了123.1%和249.1%。这项工作最大限度地利用了环境能源,提供了一种环保且不间断的发电策略。这为白天和夜间的持续发电开辟了新的可能性。