School of Energy and Mechanical Engineering, Nanjing Normal University, Nanjing 210023, China.
School of Energy and Mechanical Engineering, Nanjing Normal University, Nanjing 210023, China.
Bioresour Technol. 2024 Sep;408:131206. doi: 10.1016/j.biortech.2024.131206. Epub 2024 Aug 7.
Carbon quantum dots (CQDs) were successfully synthesized from carbohydrate-rich residue of birch obtained following the lignin-first strategy. The optical and physicochemical properties of the CQDs were studied, along with their potential for photocatalytic pollutant degradation. By combining solvothermal and chemical oxidation methods, the product yield of CQDs from carbohydrate-rich residue reached 8.1 wt%. Doping nitrogen enhances the graphitization of CQDs and introduces abundant amino groups to the surface, thereby boosted the quantum yield significantly from 8.9 % to 18.7 %-19.3 %. Nitrogen-doped CQDs exhibited efficient photocatalytic degradation of methylene blue, reaching 37 % within 60 min, with a kinetic degradation rate of 0.00725 min. This study demonstrates that carbohydrate-rich residue obtained from lignin-first strategy are ideal precursors for synthesizing CQD with high mass yield and quantum yield by combining solvothermal treatment and chemical oxidation methods, offering a novel approach for the utilization of whole biomass components following the lignin-first strategy.
碳量子点(CQDs)是成功地从桦木的富含碳水化合物的残余物中合成的,该残余物是通过木质素优先策略得到的。研究了 CQDs 的光学和物理化学性质及其在光催化污染物降解方面的潜在应用。通过结合溶剂热和化学氧化方法,从富含碳水化合物的残余物中得到的 CQDs 的产物产率达到了 8.1wt%。氮掺杂增强了 CQDs 的石墨化,并在表面引入了丰富的氨基,从而将量子产率从 8.9%提高到 18.7%-19.3%。氮掺杂 CQDs 对亚甲基蓝表现出高效的光催化降解性能,在 60 分钟内达到 37%,动力学降解速率为 0.00725 分钟。这项研究表明,木质素优先策略得到的富含碳水化合物的残余物是通过溶剂热处理和化学氧化方法合成高质量产率和高量子产率 CQD 的理想前体,为木质素优先策略下的全生物质组分的利用提供了一种新方法。