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S、N共掺杂低维碳纳米带/碳点复合材料的绿色制备及其在可见光和近红外区域的光电响应特性

Green Preparation of S, N Co-Doped Low-Dimensional C Nanoribbon/C Dot Composites and Their Optoelectronic Response Properties in the Visible and NIR Regions.

作者信息

Ma Xingfa, Zhang Xintao, Gao Mingjun, Wang You, Li Guang

机构信息

School of Environmental and Material Engineering, Center of Advanced Functional Materials, Yantai University, Yantai 264005, China.

National Laboratory of Industrial Control Technology, Institute of Cyber-Systems and Control, Zhejiang University, Hangzhou 310027, China.

出版信息

Materials (Basel). 2024 Aug 23;17(17):4167. doi: 10.3390/ma17174167.

Abstract

The green production of nanocomposites holds great potential for the development of new materials. Graphene is an important class of carbon-based materials. Despite its high carrier mobility, it has low light absorption and is a zero-bandgap material. In order to tune the bandgap and improve the light absorption, S, N co-doped low-dimensional C/C nanocomposites with polymer and graphene oxide nanoribbons (the graphene oxide nanoribbons were prepared by open zipping of carbon nanotubes in a previous study) were synthesized by one-pot carbonization through dimensional-interface and phase-interface tailoring of nanocomposites in this paper. The resulting C/C nanocomposites were coated on untreated A4 printing paper and the optoelectronic properties were investigated. The results showed that the S, N co-doped C/C nanoribbon/carbon dot hybrid exhibited enhanced photocurrent signals of the typical 650, 808, 980, and 1064 nm light sources and rapid interfacial charge transfer compared to the N-doped counterpart. These results can be attributed to the introduction of lone electron pairs of S, N elements, resulting in more transition energy and the defect passivation of carbon materials. In addition, the nanocomposite also exhibited some electrical switching response to the applied strain. The photophysical and doping mechanisms are discussed. This study provides a facile and green chemical approach to prepare hybrid materials with external stimuli response and multifunctionality. It provides some valuable information for the design of C/C functional nanocomposites through dimensional-interface and phase-interface tailoring and the interdisciplinary applications.

摘要

纳米复合材料的绿色生产在新材料开发方面具有巨大潜力。石墨烯是一类重要的碳基材料。尽管其载流子迁移率高,但光吸收低且是零带隙材料。为了调节带隙并提高光吸收,本文通过对纳米复合材料进行尺寸界面和相界面剪裁,采用一锅法碳化合成了含聚合物和氧化石墨烯纳米带(氧化石墨烯纳米带是在先前研究中通过碳纳米管的开放拉链制备的)的S、N共掺杂低维C/C纳米复合材料。将所得的C/C纳米复合材料涂覆在未处理的A4打印纸上,并对其光电性能进行了研究。结果表明,与N掺杂的对应物相比,S、N共掺杂的C/C纳米带/碳点杂化物在典型的650、808、980和1064nm光源下表现出增强的光电流信号以及快速的界面电荷转移。这些结果可归因于S、N元素孤电子对的引入,导致更多的跃迁能量以及碳材料的缺陷钝化。此外,该纳米复合材料对施加的应变还表现出一些电开关响应。讨论了其光物理和掺杂机制。本研究提供了一种简便的绿色化学方法来制备具有外部刺激响应和多功能性的杂化材料。它为通过尺寸界面和相界面剪裁设计C/C功能纳米复合材料及其跨学科应用提供了一些有价值的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/294e/11395812/1d52833c5499/materials-17-04167-sch001.jpg

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