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Hollow Nanostructures for Photocatalysis: Advantages and Challenges

机译:中空纳米结构的光催化:优势和挑战

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摘要

Photocatalysis for solar-driven reactions promises a bright future in addressing energy and environmental challenges. The performance of photocatalysis is highly dependent on the design of photocatalysts, which can be rationally tailored to achieve efficient light harvesting, promoted charge separation and transport, and accelerated surface reactions. Due to its unique feature, semiconductors with hollow structure offer many advantages in photo-catalyst design including improved light scattering and harvesting, reduced distance for charge migration and directed charge separation, and abundant surface reactive sites of the shells. Herein, the relationship between hollow nanostructures and their photocatalytic performance are discussed. The advantages of hollow nanostructures are summarized as: 1) enhancement in the light harvesting through light scattering and slow photon effects; 2) suppression of charge recombination by reducing charge transfer distance and directing separation of charge carriers; and 3) acceleration of the surface reactions by increasing accessible surface areas for separating the redox reactions spatially. Toward the end of the review, some insights into the key challenges and perspectives of hollow structured photocatalysts are also discussed, with a good hope to shed light on further promoting the rapid progress of this dynamic research field.
机译:用于太阳能驱动反应的光催化在解决能源和环境挑战方面前景广阔。光催化的性能高度依赖于光催化剂的设计,可以合理地调整光催化剂的设计以实现有效的光收集,促进的电荷分离和传输以及加速的表面反应。由于其独特的特性,具有空心结构的半导体在光催化剂设计中具有许多优势,包括改善的光散射和收集,缩短的电荷迁移距离和定向的电荷分离距离以及壳层丰富的表面反应位。在此,讨论了中空纳米结构与其光催化性能之间的关系。中空纳米结构的优点概括为:1)通过光散射和缓慢的光子效应增强了光的收集; 2)通过减小电荷转移距离并指导电荷载流子的分离来抑制电荷复合; 3)通过增加可利用的表面积以在空间上分离氧化还原反应来加速表面反应。在本评论即将结束时,还讨论了对中空结构光催化剂的关键挑战和观点的一些见解,以期为进一步推动这一动态研究领域的快速发展提供希望。

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