Rastgar Saeedeh, Elboughdiri Noureddine
Department of Environmental Sciences, Faculty of Fisheries and Environmental Sciences, Gorgan University of Agricultural Sciences and Natural Resources, Gorgan, 49189-43464, Iran.
Chemical Engineering Department, College of Engineering, University of Ha'il, P.O. Box 2440, 81441, Ha'il, Saudi Arabia.
J Fluoresc. 2025 Sep 10. doi: 10.1007/s10895-025-04405-9.
This review delivers a focused and critical evaluation of recent progress in the green synthesis of carbon quantum dots (CQDs), with particular attention to state-of-the-art approaches utilizing renewable biomass as precursors. The main objective is to systematically examine innovative, environmentally friendly methods and clarify their direct influence on the core properties and photocatalytic performance of CQDs. The novelty of this review stems from its comprehensive comparison of green synthetic pathways, revealing how specific processes determine key structural, optical, and electronic attributes of the resulting CQDs. These intrinsic properties, in turn, enable significantly higher photocatalytic efficiency. Notable advancements highlighted include: (i) the enhanced stability and broadened visible light absorption achieved through green synthesis; (ii) improved photogenerated charge carrier separation; and (iii) superior rates of organic pollutant degradation (e.g., methylene blue, rhodamine B, phenol) and effective solar-driven hydrogen and oxygen evolution. Additionally, the review addresses how fine-tuning surface functionalities and synthesis parameters at the molecular level can optimize both catalytic reactivity and selectivity. By integrating and critically synthesizing the latest research, this review not only underscores the pivotal role of sustainable CQD fabrication for environmental remediation and clean energy generation, but also identifies major challenges and outlines future research directions. These insights are intended to guide the rational design of high-performance, eco-friendly photocatalytic nanomaterials in line with green chemistry principles.
本综述对碳量子点(CQDs)绿色合成的最新进展进行了重点且批判性的评估,特别关注利用可再生生物质作为前驱体的先进方法。主要目的是系统地研究创新的、环境友好型方法,并阐明它们对CQDs核心性质和光催化性能的直接影响。本综述的新颖之处在于对绿色合成途径进行了全面比较,揭示了特定过程如何决定所得CQDs的关键结构、光学和电子属性。这些内在性质进而能够显著提高光催化效率。突出的显著进展包括:(i)通过绿色合成实现的稳定性增强和可见光吸收范围拓宽;(ii)光生电荷载流子分离的改善;以及(iii)有机污染物(如亚甲基蓝、罗丹明B、苯酚)的降解速率提高以及有效的太阳能驱动的氢气和氧气析出。此外,该综述还探讨了在分子水平上微调表面功能和合成参数如何能够优化催化反应活性和选择性。通过整合和批判性地综合最新研究,本综述不仅强调了可持续CQD制备在环境修复和清洁能源生产中的关键作用,还识别了主要挑战并概述了未来研究方向。这些见解旨在指导符合绿色化学原则的高性能、生态友好型光催化纳米材料的合理设计。