Controlling the optoelectronic properties of nitrogen-doped carbon quantum dots using biomass-derived precursors in a continuous flow system

被引:2
作者
Nguyen, Kiem G. [1 ]
Hus, Matej [2 ,3 ,4 ]
Baragau, Ioan-Alexandru [1 ,5 ]
Puccinelli, Elisa [1 ]
Bowen, James [6 ]
Heil, Tobias [7 ]
Nicolaev, Adela [5 ]
Andrews, Deborah [1 ]
Sajjad, Muhammad Tariq [1 ]
Dunn, Steve [1 ]
Kellici, Suela [1 ]
机构
[1] London South Bank Univ, Sch Engn, 103 Borough Rd, London, England
[2] Natl Inst Chem, Dept Catalysis & Chem React Engn, Hajdrihova 19, Ljubljana SI-1000, Slovenia
[3] Assoc Tech Culture Slovenia ZOTKS, Zaloska 65, SL-1000 Ljubljana, Slovenia
[4] Inst Protect Cultural Heritage Slovenia ZVKDS, Res Inst, Poljanska 40, Ljubljana SI-1000, Slovenia
[5] Natl Inst Mat Phys, Atomistilor 405A, Magurele 077125, Ilfov, Romania
[6] Open Univ, Sch Engn & Innovat, Walton Hall, Milton Keynes MK7 6AA, England
[7] Max Planck Inst Solid State Res, Stuttgart 70569, Germany
关键词
ENERGY; BLUE;
D O I
10.1016/j.carbon.2024.119623
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The synthesis of carbon quantum dots (CQDs) from high molecular weight biomass-derived precursors poses a significant challenge due to the complex molecular structures and low conversion efficiency. This work demonstrates a green, rapid, and sustainable continuous hydrothermal flow synthesis (CHFS) approach for nitrogen-doped carbon quantum dots (NCQDs) from various biomass-derived precursors, including high molecular weight polymeric sources like chitosan, lignin, and humic acid. We find that the precursor structure significantly impacts the size of the fabricated NCQDs and their optical properties. Citric acid, a low molecular weight precursor, yields NCQDs with excitation-independent emission, higher quantum yields, and low non-radiative losses, while NCQDs derived from polymeric precursors exhibit excitation-dependent, red-shifted, and lower efficiency emission. Theoretical calculations, performed to understand the configuration and distribution of nitrogen dopants within the NCQD structure, show that pyridinic and graphitic nitrogen atoms exhibit a strong preference to aggregate near the centre of the edge of the NCQD and not in the vertices nor in the graphitic core, thus affecting the HOMO and LUMO, bandgap, and light absorption and emission wavelengths. The life cycle assessment (LCA) analysis highlights the green and scalable advantages of the CHFS process for producing NCQDs compared to batch methods, making it a sustainable and economically viable approach for large-scale NCQD synthesis from high molecular weight biomass-derived precursors. Hence, the combination of experimental data and theoretical calculations provides a comprehensive understanding of the structure-property relationships in these NCQDs.
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页数:16
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