Aquatic Toxicology Laboratory, Environmental Toxicology Group, Council of Scientific and Industrial Research-Indian Institute of Toxicology Research (CSIR-IITR), Lucknow, 226001, Uttar Pradesh, India.
Sustainability Cluster, School of Engineering University of Petroleum and Energy Studies Dehradun, Uttarakhand, India; Escuela de Ingeniería y Ciencias, Tecnologico de Monterrey, Campus Monterey, Monterrey, 64849, Nuevo Leon, Mexico.
Environ Res. 2024 Nov 15;261:119671. doi: 10.1016/j.envres.2024.119671. Epub 2024 Jul 22.
We explored the potential of carbon quantum dots (CQDs) as novel materials for wastewater treatment and their role towards environmental sustainability. The advantages of CQDs over other carbon-based materials, when synthesized using the same precursor material and for the same contaminant are discussed, enabling future researchers to choose the appropriate material. CQDs have demonstrated exceptional adaptability in various wastewater treatment, acting as efficient adsorbents for contaminants, exhibiting excellent photocatalytic properties for degradation of organic pollutants, and functioning as highly sensitive sensors for water quality monitoring. We found that bottom-up approach has better control over particle size (resulting CQDs: 1-4 nm), whereas top-down synthesis approach (resulting CQDs: 2-10 nm) have more potential for large scale applications and tunability. Transmission electron microscopy (TEM) remains the most expensive characterization technique, which provides the best resolution of the CQD's surface. The study emphasizes on the environmental impact and safety considerations pertaining to CQDs by emphasizing the need for thorough toxicity evaluation, and necessary environmental precautions. The study also identifies the lacunae pertaining to critical challenges in practical implementation of CQDs, such as scalability, competition of co-existing contaminants, and stability. Finally, future research directions are proposed, advocating green synthesis approaches, tailored surface functionalization, and, lowering the overall cost for analysis, synthesis and application of CQDs.
我们探索了碳量子点 (CQDs) 作为新型废水处理材料的潜力及其对环境可持续性的作用。讨论了 CQDs 相对于其他基于碳的材料的优势,当使用相同的前体材料并针对相同的污染物进行合成时,可以使未来的研究人员选择合适的材料。CQDs 在各种废水处理中表现出了非凡的适应性,作为污染物的高效吸附剂,具有优异的光催化性能,可降解有机污染物,并作为水质监测的高灵敏度传感器。我们发现,自下而上的方法可以更好地控制粒径(生成的 CQDs:1-4nm),而自上而下的合成方法(生成的 CQDs:2-10nm)更适合大规模应用和可调节性。透射电子显微镜 (TEM) 仍然是最昂贵的特性化技术,它提供了 CQD 表面的最佳分辨率。本研究强调了 CQDs 的环境影响和安全考虑因素,强调了需要进行彻底的毒性评估和必要的环境预防措施。该研究还确定了与 CQDs 实际应用相关的关键挑战方面的空白,例如可扩展性、共存污染物的竞争以及稳定性。最后,提出了未来的研究方向,倡导绿色合成方法、定制化的表面功能化以及降低 CQDs 的分析、合成和应用的总成本。