Armenise Vincenza, Colella Silvia, Fracassi Francesco, Listorti Andrea
Department of Chemistry, University of Bari "Aldo Moro", via Orabona 4, 70126 Bari, Italy.
CNR NANOTEC Institute of Nanotechnology, Via Amendola, 122/D, 70126 Bari, Italy.
Nanomaterials (Basel). 2021 Feb 9;11(2):433. doi: 10.3390/nano11020433.
Metal halide perovskites (MHPs) exploitation represents the next big frontier in photovoltaic technologies. However, the extraordinary optoelectronic properties of these materials also call for alternative utilizations, such as in solar-driven photocatalysis, to better address the big challenges ahead for eco-sustainable human activities. In this contest the recent reports on MHPs structures, especially those stable in aqueous solutions, suggest the exciting possibility for efficient solar-driven perovskite-based hydrogen (H) production. In this minireview such works are critically analyzed and classified according to their mechanism and working conditions. We focus on lead-free materials, because of the environmental issue represented by lead containing material, especially if exploited in aqueous medium, thus it is important to avoid its presence from the technology take-off. Particular emphasis is dedicated to the materials composition/structure impacting on this catalytic process. The rationalization of the distinctive traits characterizing MHPs-based H production could assist the future expansion of the field, supporting the path towards a new class of light-driven catalysts working in aqueous environments.
金属卤化物钙钛矿(MHP)的开发是光伏技术的下一个重大前沿领域。然而,这些材料非凡的光电特性也需要其他用途,比如用于太阳能驱动的光催化,以更好地应对生态可持续人类活动面临的重大挑战。在这种情况下,最近关于MHP结构的报道,尤其是那些在水溶液中稳定的结构,表明了基于钙钛矿高效太阳能驱动制氢的令人兴奋的可能性。在这篇综述中,根据其机理和工作条件对这些工作进行了批判性分析和分类。我们专注于无铅材料,因为含铅材料存在环境问题,特别是在水性介质中使用时,因此在技术起步阶段避免其存在很重要。特别强调了影响该催化过程的材料组成/结构。对基于MHP的制氢独特特性进行合理化分析,有助于该领域未来的扩展,为一类在水环境中工作的新型光驱动催化剂开辟道路。