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Functional carbon nitride materials - design strategies for electrochemical devices
- 1.0478374 - ÚOCHB 2018 RIV GB eng J - Journal Article
Kessler, F. K. - Zheng, Y. - Schwarz, D. - Merschjann, C. - Schnick, W. - Wang, X. - Bojdys, Michael J.
Functional carbon nitride materials - design strategies for electrochemical devices.
Nature Reviews Materials. Roč. 2, č. 6 (2017), č. článku 17030. ISSN 2058-8437. E-ISSN 2058-8437
Institutional support: RVO:61388963
Keywords : photocatalytic hydrogen evolution * visible light irradiation * triazine-based frameworks
OECD category: Electrochemistry (dry cells, batteries, fuel cells, corrosion metals, electrolysis)
Impact factor: 51.941, year: 2017
In the past decade, research in the field of artificial photosynthesis has shifted from simple, inorganic semiconductors to more abundant, polymeric materials. For example, polymeric carbon nitrides have emerged as promising materials for metal-free semiconductors and metal-free photocatalysts. Polymeric carbon nitride (melon) and related carbon nitride materials are desirable alternatives to industrially used catalysts because they are easily synthesized from abundant and inexpensive starting materials. Furthermore, these materials are chemically benign because they do not contain heavy metal ions, thereby facilitating handling and disposal. In this Review, we discuss the building blocks of carbon nitride materials and examine how strategies in synthesis, templating and post-processing translate from the molecular level to macroscopic properties, such as optical and electronic bandgap. Applications of carbon nitride materials in bulk heterojunctions, laser-patterned memory devices and energy storage devices indicate that photocatalytic overall water splitting on an industrial scale may be realized in the near future and reveal a new avenue of 'post-silicon electronics'.
Permanent Link: http://hdl.handle.net/11104/0274475
Number of the records: 1