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通往光致发光碳量子点(CQDs)的环保与可持续途径。

Eco-Friendly and Sustainable Pathways to Photoluminescent Carbon Quantum Dots (CQDs).

作者信息

Gulati Shikha, Baul Arikta, Amar Anoushka, Wadhwa Rachit, Kumar Sanjay, Varma Rajender S

机构信息

Department of Chemistry, Sri Venkateswara College, University of Delhi, Delhi 110021, India.

Institute for Nanomaterials, Advanced Technologies, and Innovation (CxI), Technical University of Liberec (TUL), Studentská 1402/2, 461 17 Liberec, Czech Republic.

出版信息

Nanomaterials (Basel). 2023 Jan 30;13(3):554. doi: 10.3390/nano13030554.

Abstract

Carbon quantum dots (CQDs), a new family of photoluminescent 0D NPs, have recently received a lot of attention. They have enormous future potential due to their unique properties, which include low toxicity, high conductivity, and biocompatibility and accordingly can be used as a feasible replacement for conventional materials deployed in various optoelectronic, biomedical, and energy applications. The most recent trends and advancements in the synthesizing and setup of photoluminescent CQDs using environmentally friendly methods are thoroughly discussed in this review. The eco-friendly synthetic processes are emphasized, with a focus on biomass-derived precursors. Modification possibilities for creating newer physicochemical properties among different CQDs are also presented, along with a brief conceptual overview. The extensive amount of writings on them found in the literature explains their exceptional competence in a variety of fields, making these nanomaterials promising alternatives for real-world applications. Furthermore, the benefits, drawbacks, and opportunities for CQDs are discussed, with an emphasis on their future prospects in this emerging research field.

摘要

碳量子点(CQDs)是一类新型的光致发光零维纳米粒子,近年来受到了广泛关注。由于其独特的性质,包括低毒性、高导电性和生物相容性,它们具有巨大的未来潜力,因此可以作为各种光电子、生物医学和能源应用中使用的传统材料的可行替代品。本文综述了使用环境友好方法合成和制备光致发光碳量子点的最新趋势和进展。强调了生态友好的合成过程,重点是生物质衍生的前驱体。还介绍了在不同碳量子点中创造更新的物理化学性质的改性可能性,并给出了简要的概念概述。文献中关于它们的大量著作解释了它们在各个领域的卓越能力,使这些纳米材料成为实际应用中有前景的替代品。此外,还讨论了碳量子点的优点、缺点和机遇,重点是它们在这个新兴研究领域的未来前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/98c4/9920802/c649deefe614/nanomaterials-13-00554-g007.jpg

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