• Journal of the Chinese Ceramic Society
  • Vol. 50, Issue 7, 1830 (2022)
HOU Siyi1,2,*, YU Chang1, DING Yiwang1, LIU Yingbin1, and QIU Jieshan3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    DOI: Cite this Article
    HOU Siyi, YU Chang, DING Yiwang, LIU Yingbin, QIU Jieshan. Recent Advances of Carbon Dots Applied in Dye-Sensitized Solar Cells[J]. Journal of the Chinese Ceramic Society, 2022, 50(7): 1830 Copy Citation Text show less
    References

    [1] LOH K P, HO D, CHIU G N C, et al. Clinical applications of carbon nanomaterials in diagnostics and therapy[J]. Adv Mater, 2018, 30(47): 1802368.

    [2] LIU D B, NI K, YE J L, et al. Tailoring the structure of carbon nanomaterials toward high-end energy applications[J]. Adv Mater, 2018, 30(48): 1802104.

    [3] KALYTCHUK S, POLKOV K, WANG Y, et al. Carbon dot nanothermometry: Intracellular photoluminescence lifetime thermal sensing [J]. ACS Nano, 2017, 11(2): 1432-1442.

    [4] XU X Y, RAY R, GU Y L, et al. Electrophoretic analysis and purification of fluorescent single-walled carbon nanotube fragments[J]. J Am Chem Soc, 2004, 126(40): 12736-12737.

    [5] SUN Y P, ZHOU B, LIN Y, et al. Quantum-sized carbon dots for bright and colorful photoluminescence[J]. J Am Chem Soc, 2006, 128(24): 7756-7757.

    [6] GUO R T, LI L, WANG B W, et al. Functionalized carbon dots for advanced batteries[J]. Energy Storage Mater, 2021, 37: 8-39.

    [7] RASAL A S, YADAV S, YADAV A, et al. Carbon quantum dots for energy applications: A review[J]. ACS Appl Nano Mater, 2021, 4(7): 6515-6541.

    [8] XIA C L, ZHU S J, FENG T L, et al. Evolution and synthesis of carbon dots: From carbon dots to carbonized polymer dots[J]. Adv Sci, 2019, 6(23): 1901316.

    [9] YAN Y B, GONG J, CHEN J, et al. Recent advances on graphene quantum dots: From chemistry and physics to applications[J]. Adv Mater, 2019, 31(21): 1808283.

    [10] LIU Y M, ROY S, SARKAR S, et al. A review of carbon dots and their composite materials for electrochemical energy technologies[J]. Carbon Energy, 2021, 3(5): 795-826.

    [11] ZENG Q S, FENG T L, TAO S Y, et al. Precursor-dependent structural diversity in luminescent carbonized polymer dots (CPDs): The nomenclature[J]. Light Sci Appl, 2021, 10(1): 142.

    [12] PHANG S J, TAN L L. Recent advances in carbon quantum dot (CQD)-based two dimensional materials for photocatalytic applications[J]. Catal Sci Technol, 2019, 9(21): 5882-5905.

    [13] BARMAN M K, PATRA A. Current status and prospects on chemical structure driven photoluminescence behaviour of carbon dots[J]. J Photochem Photobiol C Photochem Rev, 2018, 37: 1-22.

    [14] LIM S Y, SHEN W, GAO Z Q. Carbon quantum dots and their applications[J]. Chem Soc Rev, 2015, 44(1): 362-381.

    [15] CHAN K K, YAP S H K, YONG K T, et al. Biogreen synthesis of carbon dots for biotechnology and nanomedicine applications[J]. Nano-Micro Lett, 2018, 10(4): 72.

    [16] LIU H P, YE T, MAO C D. Fluorescent carbon nanoparticles derived from candle soot[J]. Angew Chem Int Ed, 2007, 119(34): 6593-6595.

    [17] BOURLINOS A B, STASSINOPOULOS A, ANGLOS D, et al. Photoluminescent carbogenic dots[J]. Chem Mater, 2008, 20(14): 4539-4541.

    [18] ZHU H, WANG X L, LI Y L, et al. Microwave synthesis of fluorescent carbon nanoparticles with electrochemiluminescence properties[J].Chem Commun, 2009 (34), 5118-5120.

    [19] WANG F, PANG S P, WANG L, et al. One-step synthesis of highly luminescent carbon dots in noncoordinating solvents[J]. Chem Mater, 2010, 22(16): 4528-4530.

    [20] RAO L S, TANG Y, LI Z T, et al. Efficient synthesis of highly fluorescent carbon dots by microreactor method and their application in Fe 3+ ion detection[J]. Mater Sci Eng C, 2017, 81: 213-223.

    [21] HAN Y, TANG B J, WANG L, et al. Machine-learning-driven synthesis of carbon dots with enhanced quantum yields[J]. ACS Nano, 2020, 14(11): 14761-14768.

    [22] ZHU Z J, CHENG R, LING L T, et al. Rapid and large-scale production of multi-fluorescence carbon dots by a magnetic hyperthermia method[J]. Angew Chem Int Ed, 2020, 59(8): 3099-3105.

    [23] WANG R, LU K Q, TANG Z R, et al. Recent progress in carbon quantum dots: Synthesis, properties and applications in photocatalysis[J]. J Mater Chem A, 2017, 5(8): 3717-3734.

    [24] LIU J, LIU Y, LIU N Y, et al. Metal-free efficient photocatalyst for stable visible water splitting via a two-electron pathway[J]. Science, 2015, 347(6225): 970-974.

    [25] DAS R, BANDYOPADHYAY R, PRAMANIK P, et al. Carbon quantum dots from natural resource: A review[J]. Mater Today Chem, 2018, 8: 96-109.

    [26] GE G L, LI L, WANG D, et al. Carbon dots: Synthesis, properties and biomedical applications[J]. J Mater Chem B, 2021, 9: 6553-6575.

    [27] HU C, LI M Y, QIU J S, et al. Design and fabrication of carbon dots for energy conversion and storage[J]. Chem Soc Rev, 2019, 48(8): 2315-2337.

    [28] LI S, LI L, TU H Y, et al. The development of carbon dots: From the perspective of materials chemistry[J]. Mater Today, 2021, 51: 188-207.

    [29] HU C, YU C, LI M Y, et al. Chemically tailoring coal to fluorescent carbon dots with tuned size and their capacity for Cu(II) detection[J]. Small, 2014, 10(23): 4926-4933.

    [30] BAI J P, XIAO N, WANG Y W, et al. Coal tar pitch derived nitrogen-doped carbon dots with adjustable particle size for photocatalytic hydrogen generation[J]. Carbon, 2021, 174: 750-756.

    [31] HU C, YU C, LI M Y, et al. Nitrogen-doped carbon dots decorated on graphene: A novel all-carbon hybrid electrocatalyst for enhanced oxygen reduction reaction[J]. Chem Commun, 2015, 51(16): 3419-3422.

    [32] RANI U A, NG L Y, NG C Y, et al. A review of carbon quantum dots and their applications in wastewater treatment[J]. Adv Colloid Interface Sci, 2020, 278: 102124.

    [33] LI M Y, YU C, HU C, et al. Solvothermal conversion of coal into nitrogen-doped carbon dots with singlet oxygen generation and high quantum yield[J]. Chem Eng J, 2017, 320: 570-575.

    [34] DI G L, ZHU Z L, DAI Q, et al. Wavelength-dependent effects of carbon quantum dots on the photocatalytic activity of g-C3N4 enabled by LEDs[J]. Chem Eng J, 2020, 379: 122296.

    [35] GU Z G, LI D J, ZHENG C, et al. MOF-templated synthesis of ultrasmall photoluminescent carbon-nanodot arrays for optical applications[J]. Angew Chem Int Ed, 2017, 56(24): 6853-6858.

    [36] CHANG J W, SONG X D, YU C, et al. Gravity field-mediated synthesis of carbon-conjugated quantum dots with tunable defective density for enhanced triiodide reduction[J]. Nano Energy, 2020, 69: 104377.

    [37] WANG Z, YU C, HUANG H W, et al. Carbon-enabled microwave chemistry: From interaction mechanisms to nanomaterial manufacturing[J]. Nano Energy, 2021, 85: 106027.

    [38] KANG J W, KANG D H. Effect of amino acid-derived nitrogen and/or sulfur doping on the visible-light-driven antimicrobial activity of carbon quantum dots: A comparative study[J]. Chem Eng J, 2021, 420: 129990.

    [39] ZHAO S J, HUANG L, XIE Y, et al. Green synthesis of multifunctional carbon dots for anti-cancer and anti-fungal applications[J]. Chin J Chem Eng, 2021, 37: 97-104.

    [40] SHI W L, GUO F, WANG H B, et al. Carbon dots decorated the exposing high-reactive (111) facets CoO octahedrons with enhanced photocatalytic activity and stability for tetracycline degradation under visible light irradiation[J]. Appl Catal B Environ, 2017, 219: 36-44.

    [41] HOLA K, SUDOLSKA M, KALYTCHUK S, et al. Graphitic nitrogen triggers red fluorescence in carbon dots[J]. ACS Nano, 2017, 11(12): 12402-12410.

    [42] WANG L, LI W T, YIN L Q, et al. Full-color fluorescent carbon quantum dots[J]. Sci Adv, 2020, 6(40): eabb6772.

    [43] ETEFA H F, IMAE T, YANAGIDA M. Enhanced photosensitization by carbon dots co-adsorbing with dye on p-type semiconductor (nickel oxide) solar cells[J]. ACS Appl Mater Interfaces, 2020, 12(16): 18596-18608.

    [45] REZAEI B, IRANNEJAD N, ENSAFI A A, et al. The impressive effect of eco-friendly carbon dots on improving the performance of dye-sensitized solar cells[J]. Sol Energy, 2019, 182: 412-419.

    [46] EFA M T, IMAE T. Effects of carbon dots on ZnO nanoparticle-based dye-sensitized solar cells[J]. Electrochim Acta, 2019, 303: 204-210.

    [47] GELETA T A, IMAE T. Nanocomposite photoanodes consisting of p-NiO/n-ZnO heterojunction and carbon quantum dot additive for dye-sensitized solar cells[J]. ACS Appl Nano Mater, 2021, 4(1): 236-249.

    [48] SHEJALE K P, JAISWAL A, KUMAR A, et al. Nitrogen doped carbon quantum dots as co-active materials for highly efficient dye sensitized solar cells[J]. Carbon, 2021, 183: 169-175.

    [49] ZHAO Y Y, DUAN J L, HE B L, et al. Improved charge extraction with N-doped carbon quantum dots in dye-sensitized solar cells[J]. Electrochim Acta, 2018, 282: 255-262.

    [50] ZHU W L, DUAN J L, DUAN Y Y, et al. Efficiency enhancement of hybridized solar cells through co-sensitization and fast charge extraction by up-converted polyethylene glycol modified carbon quantum dots[J]. J Power Sources, 2017, 367: 158-166.

    [51] MIHALACHE I, RADOI A, MIHAILA M, et al. Charge and energy transfer interplay in hybrid sensitized solar cells mediated by graphene quantum dots[J]. Electrochim ActaHYPERLINK"https://www.x-mol.com/paper/journal/119", 2015, 153: 306-315.

    [52] MOHAN K, BORA A, DOLUI S K. Efficient way of enhancing the efficiency of a quasi-solid-state dye-sensitized solar cell by harvesting the unused higher energy visible light using carbon dots[J]. ACS Sustain Chem Eng, 2018, 6(8): 10914-10922.

    [53] MENG X T, YU C, SONG X D, et al. Scrutinizing defects and defect density of selenium-doped graphene for high-efficiency triiodide reduction in dye-sensitized solar cells[J]. Angew Chem Int Ed, 2018, 57(17): 4682-4686.

    [54] MENG X T, YU C, ZHANG X P, et al. Active sites-enriched carbon matrix enables efficient triiodide reduction in dye-sensitized solar cells: An understanding of the active centers[J]. Nano Energy, 2018, 54: 138-147.

    [55] CHANG J W, SONG X D, YU C, et al. Hydrogen-bonding triggered assembly to configure hollow carbon nanosheets for highly efficient triiodide reduction[J]. Adv Funct Mater, 2020, 30(51): 2006270.

    [56] CHANG J W, YU C, SONG X D, et al. A C-S-C linkage-triggered ultrahigh nitrogen-doped carbon and identification of active site in triiodide reduction[J]. Angew Chem Int Ed, 2021, 60(7): 3587-3595.

    [57] CHANG J W, YU C, SONG X D, et al. Mechanochemistry-driven prelinking enables ultrahigh nitrogen-doping in carbon materials for triiodide reduction[J]. Nano EnergyHYPERLINK"https://www.x-mol.com/paper/journal/86", 2021, 89: 106332.

    [58] WU M X, SUN M Y, ZHOU H W, et al. Carbon counter electrodes in dye-sensitized and perovskite solar cells[J]. Adv Funct Mater, 2019, 30(7): 1906451.

    [59] SILAMBARASAN K, HARISH S, HARA K, et al. Ultrathin layered MoS2 and N-doped graphene quantum dots (N-GQDs) anchored reduced graphene oxide (rGO) nanocomposite-based counter electrode for dye-sensitized solar cells[J]. Carbon, 2021, 181: 107-117.

    [61] LEE C P, LIN C A, WEI T C, et al. Economical low-light photovoltaics by using the Pt-free dye-sensitized solar cell with graphene dot/PEDOT: PSS counter electrodes[J]. Nano Energy, 2015, 18: 109-117.

    HOU Siyi, YU Chang, DING Yiwang, LIU Yingbin, QIU Jieshan. Recent Advances of Carbon Dots Applied in Dye-Sensitized Solar Cells[J]. Journal of the Chinese Ceramic Society, 2022, 50(7): 1830
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