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用于全天候透明玻璃表面的集成摩擦纳米发电机和辐射冷却器。

Integrated triboelectric nanogenerator and radiative cooler for all-weather transparent glass surfaces.

作者信息

Lee Geon, Kang Hyunjung, Yun Jooyeong, Chae Dongwoo, Jeong Minsu, Jeong Minseo, Lee Dasol, Kim Miso, Lee Heon, Rho Junsuk

机构信息

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, Republic of Korea.

Department of Materials Science and Engineering, Korea University, Seoul, Republic of Korea.

出版信息

Nat Commun. 2024 Aug 2;15(1):6537. doi: 10.1038/s41467-024-50872-2.

Abstract

Sustainable energies from weather are the most ubiquitous and non-depleted resources. However, existing devices exploiting weather-dependent energies are sensitive to weather conditions and geographical locations, making their universal applicability challenging. Herein, we propose an all-weather sustainable glass surface integrating a triboelectric nanogenerator and radiative cooler, which serves as a sustainable device, harvesting energy from raindrops and saving energy on sunny days. By systematically designing transparent, high-performance triboelectric layers, functioning as thermal emitters simultaneously, particularly compatible with radiative cooling components optimized with an evolutionary algorithm, our proposed device achieves optimal performance for all-weather-dependent energies. We generate 248.28 Wm from a single droplet with an energy conversion ratio of 2.5%. Moreover, the inner temperature is cooled down by a maximum of 24.1 °C compared to pristine glass. Notably, as the proposed device is realized to provide high transparency up to 80% in the visible range, we are confident that our proposed device can be applied to versatile applications.

摘要

来自天气的可持续能源是最普遍且不可耗尽的资源。然而,现有的利用依赖天气的能源的装置对天气条件和地理位置敏感,这使得它们的普遍适用性具有挑战性。在此,我们提出一种集成了摩擦纳米发电机和辐射冷却器的全天候可持续玻璃表面,它作为一种可持续装置,能从雨滴中收集能量并在晴天节省能量。通过系统地设计同时作为热发射体的透明、高性能摩擦电层,特别是与用进化算法优化的辐射冷却组件兼容,我们提出的装置实现了对所有依赖天气的能源的最佳性能。我们从单个水滴中产生了248.28 W/m²的能量,能量转换率为2.5%。此外,与原始玻璃相比,内部温度最多降低了24.1°C。值得注意的是,由于所提出的装置在可见光范围内实现了高达80%的高透明度,我们相信我们提出的装置可应用于多种用途。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0df0/11297326/d651065e8613/41467_2024_50872_Fig1_HTML.jpg

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