Qureshi Zawar Alam, Dabash Hanan, Ponnamma Deepalekshmi, Abbas M K G
Center for Advanced Materials, Qatar University, 2713, Doha, Qatar.
Materials Science and Technology Program, Department of Mathematics, Statistics and Physics, College of Arts and Sciences, Qatar University, 2713, Doha, Qatar.
Heliyon. 2024 May 22;10(11):e31634. doi: 10.1016/j.heliyon.2024.e31634. eCollection 2024 Jun 15.
Carbon dots (CDs) have emerged as a versatile and promising carbon-based nanomaterial with exceptional optical properties, including tunable emission wavelengths, high quantum yield, and photostability. CDs are appropriate for various applications with many benefits, such as biocompatibility, low toxicity, and simplicity of surface modification. Thanks to their tunable optical properties and great sensitivity, CDs have been used in sensing as fluorescent probes for detecting pH, heavy metal ions, and other analytes. In addition, CDs have demonstrated potential as luminescence converters for white organic light-emitting diodes and light emitters in optoelectronic devices due to their superior optical qualities and exciton-independent emission. CDs have been used for drug administration and bioimaging in the biomedical field due to their biocompatibility, low cytotoxicity, and ease of functionalization. Additionally, due to their stability, efficient charge separation, and low recombination rate, CDs have shown interesting uses in energy systems, such as photocatalysis and energy conversion. This article highlights the growing possibilities and potential of CDs as adaptable nanomaterials in a variety of interdisciplinary areas related to sensing and imaging, at the same time addressing the major challenges involved in the current research and proposing scientific solutions to apply CDs in the development of a super smart society.
碳点(CDs)已成为一种多功能且有前景的碳基纳米材料,具有卓越的光学性能,包括可调发射波长、高量子产率和光稳定性。碳点适用于各种应用,具有诸多优点,如生物相容性、低毒性以及表面改性简便。由于其可调光学性能和高灵敏度,碳点已被用作荧光探针用于传感,以检测pH值、重金属离子和其他分析物。此外,由于其优异的光学品质和与激子无关的发射特性,碳点在有机发光二极管的发光转换以及光电器件中的发光体方面展现出潜力。由于其生物相容性、低细胞毒性和易于功能化,碳点已在生物医学领域用于药物递送和生物成像。此外,由于其稳定性、高效的电荷分离和低复合率,碳点在能量系统中显示出有趣的用途,如光催化和能量转换。本文重点介绍了碳点作为适应性纳米材料在与传感和成像相关的各种跨学科领域中日益增长的可能性和潜力,同时探讨了当前研究中涉及的主要挑战,并提出了在超级智能社会发展中应用碳点的科学解决方案。