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Heterostructured semiconductor nanowire arrays for artificial photosynthesis

期刊

MATERIALS HORIZONS
卷 3, 期 4, 页码 270-282

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c6mh00063k

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资金

  1. Key Project of National Natural Science Foundation of China [U1463204]
  2. National Natural Science Foundation of China [20903023, 20903022, 21173045]
  3. Award Program for Minjiang Scholar Professorship
  4. Natural Science Foundation (NSF) of Fujian Province for Distinguished Young Investigator Grant [2012J06003]
  5. Independent Research Project of State Key Laboratory of Photocatalysis on Energy and Environment [2014A05]
  6. 1st Program of Fujian Province for Top Creative Young Talents
  7. Program for Returned High-Level Overseas Chinese Scholars of Fujian province

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The current rapid industrial development generates a high need for alternative sustainable sources of energy. Artificial photosynthesis, which can directly convert solar energy into usable or storable energy resources, provides such a promising alternative. Semiconductor nanowires have gained growing interest in artificial photosynthesis due to their unique geometrical and electronic characteristics, which can provide large aspect-ratios, direct pathways for charge transport, decoupling the direction of charge carrier collection, and low reflectance induced by light scattering and trapping. In particular, heterostructured semiconductor nanowire arrays (NWAs) have recently been of great interest in artificial photosynthesis because of their unique structural and physicochemical properties. Nanowire structure can lower the electrochemical over-potential while the heterojunctions can enhance light absorption and charge separation, which thus increase the artificial photosynthesis efficiency of heterostructured semiconductor NWAs. In this review, we will highlight recent advances in the application of heterostructured semiconductor NWAs to artificial photosynthesis. An emphasis will be placed on the unique characteristics and benefits of using heterostructured semiconductor NWAs with different heterojunctions for artificial photosynthesis, as well as the associated challenges and directions for future research in this area.

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