REVIEW 4 major objections 6 minor 40 references
Exploring the Interplay Between Formation Mechanisms and Luminescence of Lignin Carbon Quantum Dots from Spruce Biomass
T0 review · 4 major / 6 minor · reviewed 2026-08-15 · deepseek-v4-flash
Pith's one-line read This paper argues that the amount of hydrochloric acid used in the acidolysis step controls which functional groups end up on lignin carbon quantum dots, and that a specific small acid dose creates a surface state that emits green light…
desk verdict A competent multi-technique study showing HCl dose tunes the surface chemistry of lignin carbon dots, but the green-emission mechanism is asserted rather than demonstrated. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The load-bearing machinery is the two-step acidolysis-and-hydrothermal synthesis combined with the proposed surface-state luminescence model. Acidolysis with HCl and m-aminophenylboronic acid de-etherifies the lignin network and grafts nitrogen and boron onto the remaining aromatic units; the hydrothermal step then condenses these modified units into carbon quantum dots. The paper's schematic surface model and simplified HOMO-LUMO energy diagram interpret the emission: the conjugated carbon core gives ultraviolet and blue bands, while surface functional groups create states that lower the energy gap and add a green component. The 20 μl HCl sample is the critical case, because its partial cleavage pattern and surface composition supposedly narrow the gap enough to make the green emission dominant.
What would settle it
Fractionate the 20 μl HCl sample by size-exclusion chromatography or stepwise centrifugation and measure the emission of each fraction: if the 503 nm band survives in the smallest well-dispersed particles after removal of low-molecular-weight species, the surface-state explanation is supported; if it disappears or shifts with aggregation state, the surface-state assignment fails.
Extended reading notes
Core claim
On the paper's own terms, the acidolysis phase is the decisive control point for luminescence in lignin carbon quantum dots. The authors show that HCl-driven acidolysis severs the ether linkages of spruce kraft lignin, lowers the methoxy-to-aromatic ratio through demethylation, and shifts aromatic NMR signals in ways consistent with chlorine and boron functionalization. The 20 μl HCl sample retains more bonds between aromatic units than either extreme, and its surface carries -OH, -NH2, -Cl, and B(OH)2 groups with an altered HOMO-LUMO gap. In emission, only this sample shows a strong band at 503 nm, together with a slightly longer luminescence lifetime (3.18 ns versus 2.88 and 2.71 ns); the authors attribute that green band to radiative recombination from surface states whose energy gap has been narrowed by the acidolysis-induced surface chemistry.
Load-bearing premise
The load-bearing premise is that the green 503 nm emission of the 20 μl HCl sample arises from surface chemical groups narrowing the emission energy gap, rather than from differences in particle size, clumping, or leftover small fluorescent molecules.
Editorial extensions
If this is right
- Adjusting only the HCl volume in the acidolysis step can switch the same spruce lignin precursor between blue-dominated and green-emitting carbon dots, giving a simple one-dial color-tuning route.
- The green 503 nm band and the longer decay time (3.18 ns) of the 20 μl HCl sample indicate that surface states, rather than only the carbon core, control this emission.
- Rising HCl lowers the Raman ID/IG ratio from 0.78 to 0.42 and increases graphitic nitrogen, so acid dosing is also a structural lever on the carbon core's degree of graphitization.
- Surface dopant concentration alone does not predict emission: the 1000 μl HCl sample carries more N, B, and Cl than the 20 μl sample but emits like the no-acid sample, implying the green state depends on a specific partial acidolysis product.
- The NMR evidence that aromatic functionalization occurs during acidolysis rather than during hydrothermal reaction means the synthesis's optical outcome is largely set before the hydrothermal step begins.
Reading between the lines
- If the surface-state explanation is correct, chemically blocking the -NH2 or B(OH)2 groups on the 20 μl HCl sample should quench or shift the 503 nm band; pH-dependent emission measurements could test this directly.
- A testable extension would be to run the same HCl-dose series on lignins with different native G/H unit ratios; if the green state requires a specific residual bond pattern, only lignins with similar architecture should reproduce it.
- Comparing HCl with other acids of similar strength could separate the specific surface role of chloride from the general effect of acid-catalyzed de-etherification, which the present data do not disentangle.
- The paper's interpretation would be strengthened by size-selected spectroscopy that rules out particle size and aggregation effects; without that, molecular fluorophores remain a viable alternative explanation for the green emission.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript reports a systematic study of lignin-derived carbon quantum dots (LG-CQDs) synthesized from spruce kraft lignin by a two-step acidolysis/hydrothermal route using m-aminophenylboronic acid as a dopant and three different HCl pretreatments (0, 20, and 1000 µL). The authors characterize the resulting materials by TEM, DLS, FTIR, Raman, XPS, 2D-HSQC NMR, zeta potential, and photoluminescence spectroscopy. They find that HCl dose correlates with increased surface incorporation of N, B, and Cl, with higher graphitic N content and more ordered sp2 domains, and they propose a formation mechanism involving de-etherification of lignin and subsequent condensation of doped monomeric units. A central claim is that the 20 µL HCl sample exhibits distinctly enhanced green emission at 503 nm, attributed to surface-state radiative recombination enabled by a reduced HOMO-LUMO gap caused by altered surface chemistry. The paper concludes that the acidolysis step is crucial for tuning the luminescence of LG-CQDs.
Significance. If the central mechanistic claim were fully supported, the paper would be a useful contribution to the rational design of LG-CQDs with tailored emission, and the multi-technique structural characterization (XPS, HSQC, Raman, TEM/DLS) of the three samples is in itself valuable. The authors are commendably explicit about the small and less reliable NMR bond-count differences for the 20 µL sample and about the complexity of assigning carbon-dot luminescence mechanisms. However, the headline conclusion—that surface functional groups directly control the green emission via a reduced HOMO-LUMO gap—is currently underdetermined by the data presented. The paper would benefit from additional control experiments and optical characterization to make the mechanistic claim load-bearing rather than speculative.
major comments (4)
- [Luminescence of CQDs (Fig. 7; Conclusions)] The assignment of the 503 nm green emission in the 20 µL HCl sample to surface-state recombination with a reduced HOMO-LUMO gap is not sufficiently supported because the authors do not rule out molecular fluorophores. The manuscript itself lists molecular fluorescence as one of the general luminescence mechanisms in CQDs, yet no control syntheses are reported: there is no hydrothermal run with m-aminophenylboronic acid alone, or with lignin alone, under the same HCl pretreatment and dialysis conditions. Given that the dialysis cutoff is only 500-1000 Da, small molecular fluorophores produced during acidolysis or from the dopant could survive and dominate the 503 nm band. Without these controls, the surface-state interpretation is one of several equally plausible explanations.
- [Luminescence of CQDs (Fig. 7); Characterization methods] No absorption spectra or absolute quantum yields are reported, although these are standard and decisive for testing a reduced HOMO-LUMO gap. A genuine reduction in the energy gap should manifest as a lower-energy absorption onset or a corresponding excitation feature; the excitation spectra shown in Fig. 7e contain bands only up to about 370-400 nm, and the 503 nm emission is excited at 400-480 nm. The absence of absorption data means the green band could equally arise from excited-state charge transfer, aggregation, or inner-filter effects, none of which require a reduced fundamental gap.
- [Results: Structure and surface chemistry (Fig. 1); Luminescence (Fig. 7)] The comparison of emission spectra across the three samples is confounded by differences in particle size, agglomeration, and concentration. The 20 µL HCl sample has a mean core diameter of 1.7 ± 0.3 nm versus approximately 10 nm for the no-HCl sample, different agglomerate size distributions (118.6 ± 39.5 nm vs 290 ± 54 nm), and a six-fold higher initial concentration (0.19 vs 0.03 mg/mL). Emission spectra are shown only in normalized form (Fig. 7e-f), so the apparent increase in relative intensity of the 503 nm band does not cleanly isolate surface chemistry from size, aggregation, or concentration effects. Concentration-matched or size-fractionated samples, or reporting absolute emission intensities and quantum yields, are needed to substantiate the claim.
- [NMR study and mechanism approach (Fig. 5); Luminescence and Conclusions] The NMR evidence for a distinct structure in the 20 µL HCl sample is internally flagged as weak, yet it is later used as a load-bearing part of the mechanistic argument. The text states that after acidolysis the number of propanoid bonds is only 0-8 per 1000 aromatic units, that the relative proportions are 'less reliable' at such low numbers, and that the 'slight increase' for 20 µL HCl 'is small in comparison to the parent lignin.' Nevertheless, the Luminescence section and Conclusions invoke the 'increased number of bonds after acidolysis' for this sample to explain its unusual emission. This inconsistency should be reconciled, either by stronger quantitative NMR evidence or by removing this element from the mechanistic claim.
minor comments (6)
- [Luminescence of CQDs (Fig. 7 caption)] The caption of Figure 7 contains labeling errors: it lists 'e' twice (excitation spectra and emission spectra) and then uses 'f' and 'h' for decay curves, which is inconsistent and confusing. Please renumber the panels and ensure each panel is referenced correctly in the text.
- [Throughout] The manuscript reports XPS compositions, zeta potentials, DLS sizes, and luminescence lifetimes as exact values without replicates, standard deviations, or error bars. For quantitative claims such as the N-graphitic/N-amino ratio trend in Table 1, at least duplicate or triplicate measurements with uncertainties are expected.
- [NMR study and mechanism approach (Fig. 5b)] The caption of Figure 5b refers to 'pine kraft lignin' while the text and title consistently discuss spruce kraft lignin; this inconsistency should be corrected.
- [Materials and methods (Synthesis)] The three syntheses are described as 'three different approaches' in the abstract, but the only variable is the HCl volume added during the pretreatment; 'approaches' overstates the distinction. Consider rephrasing to 'three different HCl dosages.'
- [XPS analysis (Fig. 3)] The C 1s fit is described as having seven components, with binding energies listed as 284.5, 284.9, 286.2, 288.9, 289.8, 285.7, and 284.0 eV, but the order does not match the assignments given (C=C, C-C, C=O, C-O, C-N, C-B). Please present the energies and assignments in a consistent order to avoid ambiguity.
- [References] References [9] and [13] are the same publication (Zhu et al., Appl Surf Sci 662, 2024) and should be merged or renumbered.
Circularity Check
No circularity: the surface-state luminescence assignment is an interpretive correlation of independent measurements, not a fitted parameter or self-citation chain.
full rationale
The manuscript is an experimental characterization study; it contains no derivation chain in which a fitted parameter is renamed as a prediction. The central mechanistic suggestion—that the 503 nm green emission of N,B CQD 20 μl HCl arises from surface-state recombination with a reduced HOMO–LUMO gap—is an interpretive assignment supported by XPS, zeta potential, FTIR, Raman, HSQC NMR, and excitation/emission mapping. The surface model in Figure 4 is inferred from compositional data, not defined in terms of the measured photoluminescence, and the energy diagram in Figure 7a is explicitly a simplified illustration rather than a calculation from which the emission wavelength is derived. No equation in the paper reduces a predicted quantity to an input by construction, and no parameter is fitted to the emission data and then called a prediction. The paper itself flags uncertainty in its structural quantification ('Given the very low number of propanoid bonds per 1000 aromatic units after hydrolysis or hydrothermal synthesis of CQDs, the relative proportions of each bond type are less reliable') and presents the competitive-reaction proposal as an assumption ('We assume that...'), which further indicates honest interpretation rather than circular justification. No load-bearing self-citation is present: the cited works on synthesis protocols and lignin chemistry are external literature, and no author-overlapping uniqueness theorem is invoked to forbid alternative explanations. The surface-state interpretation may be underdetermined—molecular fluorophores, aggregation, or missing absorption evidence are not fully excluded—but underdetermination is a correctness or evidence concern, not a circularity concern under the stated criteria. Because the explanation is not forced by construction from its own inputs, the circularity score is 0.
Assumptions & free parameters
assumptions (3)
- domain assumption 2D-HSQC NMR integrals quantitatively represent the relative abundance of lignin inter-unit bonds, even when counts drop to 0-8 per 1000 aromatic units.
- domain assumption The surface composition measured by XPS and zeta potential is the primary determinant of the differences in photoluminescence among the three samples.
- domain assumption The proposed two-step mechanism, acidolysis cleaves ether bonds and hydrothermal treatment condenses doped monomeric units into CQDs, is correct.
Cite this review
Pith. "Pith review of Exploring the Interplay Between Formation Mechanisms and Luminescence of Lignin Carbon Quantum Dots from Spruce Biomass." pith.science (2026). https://pith.science/paper/IEEWPPSK
@misc{pith2026250510886,
author = {Pith},
title = {Pith review of: Exploring the Interplay Between Formation Mechanisms and Luminescence of Lignin Carbon Quantum Dots from Spruce Biomass},
year = {2026},
howpublished = {\url{https://pith.science/paper/IEEWPPSK}},
note = {Machine review of arXiv:2505.10886}
}
read the original abstract
This study investigates the intricate relationship between the formation mechanisms and luminescent properties of lignin-derived carbon quantum dots (LG-CQDs) synthesized from spruce biomass by hydrothermal treatment. A comprehensive understanding of LG-CQD structure and its photoluminescence requires insights into the native architecture of lignin and the distribution of its acidolysis-derived fragments. Research showed how these lignin-derived units interact with dopant molecules in three different approaches during synthesis, contributing to core and surface structures that govern the optical behavior. Our findings reveal a clear correlation between structural features and luminescent properties, emphasizing the role of surface chemistry in tuning emission characteristics. These insights provide a foundation for the rational design of LG-CQDs with tailored luminescent properties, advancing their potential applications in sustainable optoelectronics, sensing, and bioimaging.
Reference graph
Works this paper leans on
-
[1]
D. D. S. Argyropoulos, C. Crestini, C. Dahlstrand, E. Furusjö, C. Gioia, K. Jedvert, G. Henriksson, C. Hulteberg, M. Lawoko, C. Pierrou, J. S. M. Samec, E. Subbotina, H. Wallmo, and M. Wimby., ‘Kraft Lignin: A Valuable, Sustainable Resource, Opportunities and Challenges’, ChemSusChem, vol. 17, no. 23, 2023, doi: 10.1002/cssc.202300492
-
[2]
V. K. Ponnusamy, D. D. Nguyen, J. Dharmaraja, S. Shobana, J. Rajesh Banu, J. G. Sartale, S. W. Chang, G. Kumar, ‘A review on lignin structure, pretreatments, fermentation reactions and biorefinery potential’, Bioresour Technol, vol. 271, 2019. doi: 10.1016/j.biortech.2018.09.070. 25
-
[3]
S. S. Wong, R. Shu, J. Zhang, H. Liu, and N. Yan, ‘Downstream processing of lignin derived feedstock into end products’, Chem Soc Rev , vol. 49, no. 15, 2020. doi: 10.1039/d0cs00134a
-
[4]
H. Luo and M. M. Abu-Omar, ‘Lignin extraction and catalytic upgrading from genetically modified poplar’, Green Chemistry, vol. 20, no. 3, 2018, doi: 10.1039/c7gc03417b
-
[5]
Y. Xue, X. Qiu, Y. Wu, Y. Qian, M. Zhou, Y. Deng and Y. Li , ‘Aggregation -induced emission: The origin of lignin fluorescence’, Polym Chem , vol. 7, no. 21, 2016, doi: 10.1039/c6py00244g
-
[6]
W. Chen, C. Hu, Y. Yang, J. Cui, and Y. Liu, ‘Rapid synthesis of carbon dots by hydrothermal treatment of lignin’, Materials, vol. 9, no. 3, 2016, doi: 10.3390/ma9030184
-
[7]
L. Zhu, D. Shen, Q. Wang, and K. H. Luo, ‘Green Synthesis of Tunable Fluorescent Carbon Quantum Dots from Lignin and Their Application in Anti-Counterfeit Printing’, ACS Appl Mater Interfaces, vol. 13, no. 47, 2021, doi: 10.1021/acsami.1c16679
- [8]
Show all 40 references
-
[10]
X. Yang, Y. Guo, S. Liang, S. Hou, T. Chu, J. Ma, X. Chen, J. Zhou and R. Sun , ‘Preparation of sulfur-doped carbon quantum dots from lignin as a sensor to detect Sudan i in an acidic environment’, J Mater Chem B, vol. 8, no. 47, 2020, doi: 10.1039/d0tb00125b
2020 doi
-
[11]
Y. Wang, Y. Liu, J. Zhou, J. Yue, M. Xu, B. An, C. Ma, W. Li and S. Liu, ‘Hydrothermal synthesis of nitrogen -doped carbon quantum dots from lignin for formaldehyde determination’, RSC Adv, vol. 11, no. 47, 2021, doi: 10.1039/d1ra05370a
2021 doi
-
[12]
L. Zhu, D. Shen, and K. Hong Luo, ‘Triple-emission nitrogen and boron co-doped carbon quantum dots from lignin: Highly fluorescent sensing platform for detection of hexavalent chromium ions’, J Colloid Interface Sci, vol. 617, 2022, doi: 10.1016/j.jcis.2022.03.039
2022 doi
-
[13]
L. Zhu, H. Wu, S. Xie, H. Yang, and D. Shen, ‘Multicolor lignin-derived carbon quantum dots: Controllable synthesis and photocatalytic applications’, Appl Surf Sci , vol. 662, 2024, doi: 10.1016/j.apsusc.2024.160126
2024
-
[14]
S. Zhao, X. Chen, C. Zhang, P. Zhao, A. J. Ragauskas, and X. Song, ‘Fluorescence Enhancement of Lignin-Based Carbon Quantum Dots by Concentration-Dependent and Electron- Donating Substituent Synergy and Their Cell Imaging Applications’, ACS Appl Mater Interfaces, vol. 13, no. ...
2021 doi
-
[15]
L. Zhu, H. Wu, H. Yang, D. Shen, H. Hu, and M. Dou, ‘Formation mechanism of lignin - derived carbon quantum dots: From chemical structures to fluorescent behaviors’, Bioresour Technol, vol. 413, 2024, doi: 10.1016/j.biortech.2024.131490. 27
2024
-
[16]
Nawaz, X
H. Nawaz, X. Zhang, S. Chen, X. Li, X. Zhang, I. Shabbir, and F. Xu , ‘Recent developments in lignin -based fluorescent materials’, Int J Biol Macromol , vol. 258, 2024. doi: 10.1016/j.ijbiomac.2023.128737
2024
-
[17]
T. Yang, Y. He, C. Wang, H. Bi, and G. Chen, ‘Carbon quantum dots derived from lignin nanoparticles for dual UV-excited fluorescent anti-counterfeiting materials’, Int J Biol Macromol, p. 140666, Feb. 2025, doi: 10.1016/j.ijbiomac.2025.140666
2025
-
[18]
Zhang, Y
B. Zhang, Y. Liu, M. Ren, W. Li, X. Zhang, R. Vajtai, P. M. Ajayan, J. M. Tour, and L. Wang, ‘Sustainable Synthesis of Bright Green Fluorescent Nitrogen-Doped Carbon Quantum Dots from Alkali Lignin’, ChemSusChem, vol. 12, no. 18, 2019, doi: 10.1002/cssc.201901693
2019 doi
-
[19]
Haldar, P
A. Haldar, P. Bhagwati, and J. Ekhe, ‘Adsorptive Removal of Malachite Green using the Coke Obtained from Pyrolysis of Industrial Waste Lignin’, J Chem Biol Phys Sci , vol. 6, no. 3 2016
2016
-
[20]
R. K. Das and S. Mohapatra, ‘Highly luminescent, heteroatom-doped carbon quantum dots for ultrasensitive sensing of glucosamine and targeted imaging of liver cancer cells’, J Mater Chem B, vol. 5, no. 11, pp. 2190–2197, 2017, doi: 10.1039/c6tb03141b
2017 doi
-
[21]
Klapiszewski, M
Ł. Klapiszewski, M. Wysokowski, I. Majchrzak, T. Szatkowski, M. Nowacka, K. Siwińska-Stefańska, K. Szwarc-Rzepka, P. Bartczak, H. Ehrlich, and T. Jesionowski, ‘Preparation and characterization of multifunctional chitin/lignin materials’, J Nanomater, vol. 2013, 2013, doi: 10.1...
2013 doi
-
[22]
Y. Xu, T. Wang, Z. Chen, Y. Li, D. Huang, F. Guo, M. Wang , ‘Hydrolysis of p - Phenylenediamine Antioxidants: The Reaction Mechanism, Prediction Model, and Potential 28 Impact on Aquatic Toxicity’, Environ Sci Technol , vol 59, no 1, 2024, doi: 10.1021/acs.est.4c10227
2024 doi
-
[23]
Y. Li, M. Hu, K. Liu, S. Gao, H. Lian, and C. Xu, ‘Lignin derived multicolor carbon dots for visual detection of formaldehyde’, Ind Crops Prod , vol. 192, 2023, doi: 10.1016/j.indcrop.2022.116006
2023
-
[24]
B. Wang, J. Yu, L. Sui, S. Zhu, Z. Tang, B. Yang, S. Lu, ‘Rational Design of Multi-Color- Emissive Carbon Dots in a Single Reaction System by Hydrothermal’, Advanced Science, vol. 8, no. 1, 2021, doi: 10.1002/advs.202001453
2021 doi
-
[25]
L. Ai, Z. Song, M. Nie, J. Yu, F. Liu, H. Song, B. Zhang, G. I. N. Waterhouse, S. Lu , ‘Solid-state Fluorescence from Carbon Dots Widely Tunable from Blue to Deep Red through Surface Ligand Modulation’, Angew Chem Int Ed , vol. 62, no. 12, 2023, doi: 10.1002/anie.202217822
2023 doi
-
[26]
Karlsson, J
M. Karlsson, J. Romson, T. Elder, Å. Emmer, and M. Lawoko, ‘Lignin Structure and Reactivity in the Organosolv Process Studied by NMR Spectroscopy, Mass Spectrometry, and Density Functional Theory’, Biomacromolecules, vol. 24, no. 5, 2023, doi: 10.1021/acs.biomac.3c00186
2023 doi
-
[27]
X. Liu, S. Zhao, X. Chen, X. Han, J. Zhang, M. Wu, X. Song, and Z. Zhang, ‘The effect of lignin molecular weight on the formation and properties of carbon quantum dots’, Green Chemistry, vol. 26, no. 6, 2024, doi: 10.1039/d3gc04694j
2024 doi
-
[28]
T. R. Kozmelj, E. Bartolomei, A. Dufour, S. Leclerc, P. Arnoux, B. Likozar, E. Jasiukaitytė-Grojzdek, M. Grilc, Y. Le Brech , ‘Oligomeric fragments distribution, structure and 29 functionalities upon ruthenium-catalyzed technical lignin depolymerization’, Biomass Bioenergy, vo...
2024
-
[29]
S. Lin, C. Lai, Z. Huang, W. Liu, L. Xiong, Y. Wu, Y. Jin, ‘Sustainable synthesis of lignin- derived carbon dots with visible pH response for Fe 3+ detection and bioimaging’, Spectrochim Acta A Mol Biomol Spectrosc, vol. 302, 2023, doi: 10.1016/j.saa.2023.123111
2023
-
[30]
M. L. Liu, B. Bin Chen, C. M. Li, and C. Z. Huang, ‘Carbon dots: Synthesis, formation mechanism, fluorescence origin and sensing applications’, Green Chem , vol. 21, 2019, doi: 10.1039/c8gc02736f
2019 doi
-
[31]
X. Li, S. Zhang, S. A. Kulinich, Y. Liu, and H. Zeng, ‘Engineering surface states of carbon dots to achieve controllable luminescence for solid -luminescent composites and sensitive Be 2+ detection’, Sci Rep, vol. 4, 2014, doi: 10.1038/srep04976
2014 doi
-
[32]
S. Zhu, Y. Song, X. Zhao, J. Shao, J. Zhang, and B. Yang, ‘The photoluminescence mechanism in carbon dots (graphene quantum dots, carbon nanodots, and polymer dots): current state and future perspective’, Nano Res, vol. 8, no. 2, pp. 355 –381, 2015, doi: 10.1007/s12274 - 014-0644-3
2015 doi
-
[33]
Alafeef, I
M. Alafeef, I. Srivastava, T. Aditya, and D. Pan, ‘Carbon Dots: From Synthesis to Unraveling the Fluorescence Mechanism’, Small, vol. 20, no. 4, 2024, doi: 10.1002/smll.202303937
2024 doi
-
[34]
F. Yan, Z. Sun, H. Zhang, X. Sun, Y. Jiang, and Z. Bai, ‘The fluorescence mechanism of carbon dots, and methods for tuning their emission color: a review’, Microchimica Acta, vol. 186, no. 8, 2019, doi: 10.1007/s00604-019-3688-y. 30
2019 doi
-
[35]
H. Ding, S. B. Yu, J. S. Wei, and H. M. Xiong, ‘Full-color light-emitting carbon dots with a surface-state-controlled luminescence mechanism’, ACS Nano, vol. 10, no. 1, pp. 484–491, 2016, doi: 10.1021/acsnano.5b05406
2016 doi
-
[36]
Z. L. Wu, Z. X. Liu, and Y. H. Yuan, ‘Carbon dots: Materials, synthesis, properties and approaches to long -wavelength and multicolor emission’, J Mater Chem B , vol. 5, no. 21, pp. 3794–3809, 2017, doi: 10.1039/c7tb00363c
2017 doi
-
[37]
J. Gan, L. Chen, Z. Chen, J. Zhang, W. Yu, C. Huang, Y. Wu, and K. Zhang , ‘Lignocellulosic Biomass-Based Carbon Dots: Synthesis Processes, Properties, and Applications’, Small, vol. 19, no. 48, 2023, doi: 10.1002/smll.202304066
2023 doi
-
[38]
J. Zhu, H. Shao, X. Bai, Y. Zhai, Y. Zhu, X. Chen, G. Pan, B. Dong, L. Xu, H. Zhang and H. Song , ‘Modulation of the photoluminescence in carbon dots through surface modification: From mechanism to white light -emitting diodes’, Nanotechnology, vol. 29, no. 24, 2018, doi: 10.1...
2018 doi
-
[39]
X. Zhao, S. Liang, Z. Li, X. Mao, M. Wang, X. Xie, and W. Gao, ‘Lignin-Derived Carbon Dots with Triple Emission Peaks for Lighting Modules and Backlight Display’, ACS Appl Nano Mater, vol. 6, no. 14, pp. 12893–12903, 2023, doi: 10.1021/acsanm.3c01633
2023 doi
-
[40]
G. E. LeCroy, F. Messina, A. Sciortino, C. E. Bunker, P. Wang, K. A. Shiral Fernando, and Y. P. Sun, ‘Characteristic Excitation Wavelength Dependence of Fluorescence Emissions in Carbon “quantum” Dots’, Journal of Physical Chemistry C , vol. 121, no. 50, pp. 28180 –28186, 2017...
2017 doi
-
[41]
Z. Gan, H. Xu, and Y. Hao, ‘Mechanism for excitation-dependent photoluminescence from graphene quantum dots and other graphene oxide derivates: Consensus, debates and challenges’, Nanoscale, vol. 8, no. 15, pp. 7794–7807, 2016, doi: 10.1039/c6nr00605a. Graphical abstract: SYNO...
2016 doi
Reviewed August 15, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.