Potential of Raman spectroscopy towards understanding structures of carbon-based materials and perovskites

被引:0
作者
Premkumar Selvarajan
Goutam Chandra
Susmita Bhattacharya
Sanchita Sil
Ajayan Vinu
Siva Umapathy
机构
[1] Indian Institute of Science,Department of Inorganic & Physical Chemistry
[2] National Institute of Technology Calicut,Department of Physics
[3] Indian Institute of Science,Department of Physics
[4] Defence Bioengineering & Electromedical Laboratory,Global Innovative Center for Advanced Nanomaterials (GICAN), Faculty of Engineering and Built Environment
[5] The University of Newcastle,undefined
[6] Indian Institute for Science Education & Research,undefined
来源
Emergent Materials | 2019年 / 2卷
关键词
Raman spectroscopy; Graphene; Carbon nanotubes; Fullerene; C; C; Carbon nitride; Composites; Perovskites;
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中图分类号
学科分类号
摘要
Sp3 and sp2 hybridised carbon materials have been exploited for myriad applications owing to their unique electronic features. Novel carbon materials and its composites are synthesised by researchers with improved physico-chemical properties for various applications. These novel materials need to be characterised to decipher the structures. Vibrational spectroscopic studies have been used to understand the lattice dynamics of such carbon materials for the last six decades. Raman spectroscopy in particular has been a unique technique in such investigations as it provides bond-specific information at a molecular level which is desirable in understanding the microstructure of carbon. In this review, we highlight the potential of Raman spectroscopy to study the microstructure of different carbon allotropes such as graphene, carbon nanotubes, fullerene, and carbon nitride and its composites. In addition, perovskites has been receiving a lot of attention recently as the scientific community has realised their potential in the areas of material science and energy storage and conversion. This review also covers a few aspects of Raman spectroscopic studies of oxide and halide perovskites.
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页码:417 / 439
页数:22
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