4.8 Review

One-dimension-based spatially ordered architectures for solar energy conversion

Journal

CHEMICAL SOCIETY REVIEWS
Volume 44, Issue 15, Pages 5053-5075

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4cs00408f

Keywords

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Funding

  1. Key Project of National Natural Science Foundation of China [U1463204]
  2. National Natural Science Foundation of China (NSFC) [20903023, 20903022, 21173045]
  3. Award Program for Minjiang Scholar Professorship
  4. Natural Science Foundation (NSF) of Fujian Province [2012J06003]
  5. Program for Returned High-Level Overseas Chinese Scholars of Fujian province
  6. Project Sponsored by the Scientific Research Foundation for the Returned Overseas Chinese Scholars, State Education Ministry

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The severe consequences of fossil fuel consumption have resulted in a need for alternative sustainable sources of energy. Conversion and storage of solar energy via a renewable method, such as photocatalysis, holds great promise as such an alternative. One-dimensional (1D) nanostructures have gained attention in solar energy conversion because they have a long axis to absorb incident sunlight yet a short radial distance for separation of photogenerated charge carriers. In particular, well-ordered spatially high dimensional architectures based on 1D nanostructures with well-defined facets or anisotropic shapes offer an exciting opportunity for bridging the gap between 1D nanostructures and the micro and macro world, providing a platform for integration of nanostructures on a larger and more manageable scale into high-performance solar energy conversion applications. In this review, we focus on the progress of photocatalytic solar energy conversion over controlled one-dimension-based spatially ordered architecture hybrids. Assembly and classification of these novel architectures are summarized, and we discuss the opportunity and future direction of integration of 1D materials into high-dimensional, spatially organized architectures, with a perspective toward improved collective performance in various artificial photoredox applications.

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