Xu Bolin, Ganesan Muthusankar, Devi Ramadhass Keerthika, Ruan Xiaowen, Chen Weicheng, Lin Chun Che, Chang Huan-Tsung, Lizundia Erlantz, An Alicia Kyoungjin, Ravi Sai Kishore
School of Energy and Environment, City University of Hong Kong, Kowloon, 999077, Hong Kong.
Institute of Organic and Polymeric Materials, Research and Development Center for Smart Textile Technology, National Taipei University of Technology, Taipei, 106344, Taiwan.
Adv Mater. 2025 Feb;37(5):e2406666. doi: 10.1002/adma.202406666. Epub 2024 Dec 15.
Solar steam generation (SSG) presents a promising approach to addressing the global water crisis. Central to SSG is solar photothermal conversion that requires efficient light harvesting and management. Hierarchical structures with multi-scale light management are therefore crucial for SSG. At the molecular and sub-nanoscale levels, materials are fine-tuned for broadband light absorption. Advancing to the nano- and microscale, structures are tailored to enhance light harvesting through internal reflections, scattering, and diverse confinement effects. At the macroscopic level, light capture is optimized through rationally designed device geometries, configurations, and arrangements of solar absorber materials. While the performance of SSG relies on various factors including heat transport, physicochemical interactions at the water/air and material/water interfaces, salt dynamics, etc., efficient light capture and utilization holds a predominant role because sunlight is the sole energy source. This review focuses on the critical, yet often underestimated, role of hierarchical light harvesting/management at different dimensional scales in SSG. By correlating light management with the structure-property relationships, the recent advances in SSG are discussed, shedding light on the current challenges and possible future trends and opportunities in this domain.
太阳能蒸汽发生(SSG)为解决全球水危机提供了一种很有前景的方法。SSG的核心是太阳能光热转换,这需要高效的光捕获和管理。因此,具有多尺度光管理的分级结构对于SSG至关重要。在分子和亚纳米尺度上,材料经过微调以实现宽带光吸收。发展到纳米和微米尺度,结构经过定制以通过内部反射、散射和各种限制效应来增强光捕获。在宏观层面,通过合理设计太阳能吸收材料的器件几何形状、配置和排列来优化光捕获。虽然SSG的性能依赖于包括热传输、水/空气和材料/水界面处的物理化学相互作用、盐动力学等各种因素,但高效的光捕获和利用起着主导作用,因为阳光是唯一的能源。本综述聚焦于分级光捕获/管理在不同维度尺度上在SSG中关键但常被低估的作用。通过将光管理与结构-性能关系相关联,讨论了SSG的最新进展,揭示了该领域当前的挑战以及可能的未来趋势和机遇。