[1] WANG Y Q, LI X C, ZHAO S J,et al. Synthesis strategies, luminescence mechanisms, and biomedical applications of near-infrared fluorescent carbon dots. Coordination Chemistry Reviews, 2022, 470: 214703. [2] SU Y, XIE Z G, ZHENG M.Carbon dots with concentration-modulated fluorescence: aggregation-induced multicolor emission.Journal of Colloid and Interface Science, 2020, 573: 241. [3] CAI M X, LAI L, ZHAO M W.Synthesis, properties, and applications of amphiphilic carbon dots: a review.Carbon, 2025, 233: 119921. [4] LIU H X, ZHONG X, PAN Q,et al. A review of carbon dots in synthesis strategy. Coordination Chemistry Reviews, 2024, 498: 215468. [5] SINGH P, BHANKAR V, KUMAR S,et al. Biomass-derived carbon dots as significant biological tools in the medicinal field: a review. Advances in Colloid and Interface Science, 2024, 328: 103182. [6] DING Z F, YANG Y Q, LI Z J.Synthesis and supercapacitor performance of histidine-functionalized carbon dots/graphene aerogel.Journal of Inorganic Materials, 2020, 35(10): 1130. [7] SHARMA N, SHARMA A, LEE H J.The antioxidant properties of green carbon dots: a review.Environmental Chemistry Letters, 2025, 23(4): 1061. [8] HUANG S, SONG Y X, ZHANG J R,et al. Antibacterial carbon dots-based composites. Small, 2023, 19(31): 2207385. [9] HAN D L, HAN Y J, LI J,et al. Enhanced photocatalytic activity and photothermal effects of cu-doped metal-organic frameworks for rapid treatment of bacteria-infected wounds. Applied Catalysis B: Environmental, 2020, 261: 118248. [10] FAN X, YANG F, HUANG J B,et al. Metal-organic-framework-derived 2D carbon nanosheets for localized multiple bacterial eradication and augmented anti-infective therapy. Nano Letters, 2019, 19(9): 5885. [11] CHU X H, ZHANG P, LIU Y H,et al. A multifunctional carbon dot-based nanoplatform for bioimaging and quaternary ammonium salt/photothermal synergistic antibacterial therapy. Journal of Materials Chemistry. B, 2022, 10(15): 2865. [12] HONDA J, SUGAWA K, TAHARA H,et al. Photothermal therapeutic nanomaterials composed of plasmonic aluminum nanostructures for effective killing of cells. ACS Applied Nano Materials, 2024, 7(3): 2889. [13] BHARATHI D, LEE J.Recent trends in bioinspired metal nanoparticles for targeting drug-resistant biofilms.Pharmaceuticals, 2025, 18(7): 1006. [14] WANG Y Y, HUANG J H, KONG H X,et al. Silver loaded radial mesoporous silica: preparation and application in dental resins. Journal of Inorganic Materials, 2025, 40(1): 77. [15] DASGUPTA N, RAMALINGAM C.Silver nanoparticle antimicrobial activity explained by membrane rupture and reactive oxygen generation.Environmental Chemistry Letters, 2016, 14(4): 477. [16] CHOI O, HU Z Q.Size dependent and reactive oxygen species related nanosilver toxicity to nitrifying bacteria.Environmental Science & Technology, 2008, 42(12): 4583. [17] YANG W S, HU W, ZHANG J W,et al. Tannic acid/Fe3+ functionalized magnetic graphene oxide nanocomposite with high loading of silver nanoparticles as ultra-efficient catalyst and disinfectant for wastewater treatment. Chemical Engineering Journal, 2021, 405: 126629. [18] XU Z Q, HE H, ZHANG S Y,et al. Mechanistic studies on the antibacterial behavior of Ag nanoparticles decorated with carbon dots having different oxidation degrees. Environmental Science: Nano, 2019, 6(4): 1168. [19] JIN J C, XU Z Q, DONG P,et al. One-step synthesis of silver nanoparticles using carbon dots as reducing and stabilizing agents and their antibacterial mechanisms. Carbon, 2015, 94: 129. [20] SHEN L M, CHEN M L, HU L L,et al. Growth and stabilization of silver nanoparticles on carbon dots and sensing application. Langmuir, 2013, 29(52): 16135. [21] ZULFAJRI M, GEDDA G, ULLA H,et al. A review on the chemical and biological sensing applications of silver/carbon dots nanocomposites with their interaction mechanisms. Advances in Colloid and Interface Science, 2024, 325: 103115. [22] SANDEEP D H, RADHA KRUSHNA B R, GAGANA M,et al. Tunable fluorescent carbon dots from Mimosa pudica for sustainable agricultural lighting and sensing applications. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2025, 723: 137353. [23] AMJADI M, HALLAJ T, ASADOLLAHI H,et al. Facile synthesis of carbon quantum dot/silver nanocomposite and its application for colorimetric detection of methimazole. Sensors and Actuators B: Chemical, 2017, 244: 425. [24] HERRERA E, GIL A, ALGARRA M.Emerging synthetic strategies, tunable properties, and multifunctional applications of metal-doped carbon dots: a review.Advances in Colloid and Interface Science, 2026, 352: 103826. [25] WU J B, LIN M L, CONG X,et al. Raman spectroscopy of graphene-based materials and its applications in related devices. Chemical Society Reviews, 2018, 47(5): 1822. [26] SURAJ P, SREEKUMAR S, ARUN P,et al. Feasibility study of coffee husk char-derived carbon dots to enhance solar photovoltaic-thermal applications. Journal of Analytical and Applied Pyrolysis, 2024, 179: 106509. [27] YU M Z, LI P L, LI J Y,et al. Unusual antibacterial property and selectivity enabled by tuning nanozyme activities of L-arginine derived carbon dots. Advanced Healthcare Materials, 2025, 14(2): 2403201. [28] LIANG Y Q, LIU Y P, WU J,et al. Carbon dots with molecular pores achieve pH-responsive fluorescence by loading L-arginine for intracellular dynamic imaging and scald wound healing. Chemical Engineering Journal, 2025, 524: 169579. [29] GAO D, ZHANG Y L, SUN J,et al. One-step synthesis of specific pH-responsive carbon quantum dots and their luminescence mechanism. Journal of Inorganic Materials, 2019, 34(12): 1309. [30] REIVANTH K, SANGEETHA A, PALANIVEL M,et al. Solvothermal synthesis of multicolor-emitting carbon quantum dots for white light and optoelectronic applications. ACS Omega, 2026, 11(4): 5592. [31] GUAN Y F, ZHANG F, HUANG B C,et al. Enhancing electricity generation of microbial fuel cell for wastewater treatment using nitrogen-doped carbon dots-supported carbon paper anode. Journal of Cleaner Production, 2019, 229: 412. [32] XIAN Y M, LI K.Hydrothermal synthesis of high-yield red fluorescent carbon dots with ultra-narrow emission by controlled O/N elements.Advanced Materials, 2022, 34(21): 2201031. [33] CHO S, JUNG C W, LEE D,et al. Predictable incorporation of nitrogen into carbon dots: insights from pinacol rearrangement and iminium ion cyclization. Nanoscale Advances, 2023, 5(20): 5613. [34] PERMATASARI F A, UMAMI R, SUNDARI C D D,et al. New insight into pyrrolic-N site effect towards the first NIR window absorption of pyrrolic-N-rich carbon dots. Nano Research, 2023, 16(4): 6001. [35] PENG Y T, GUO B S, WANG W D,et al. Efficient preparation of nitrogen-doped lignin-based carbon nanotubes and the selectivity of nitrogen speciation for photothermal therapy. International Journal of Biological Macromolecules, 2023, 238: 124127. [36] SAIKIA M, DAS T, SAIKIA B K.A novel rapid synthesis of highly stable silver nanoparticle/carbon quantum dot nanocomposites derived from low-grade coal feedstock.New Journal of Chemistry, 2021, 46(1): 309. [37] LI Y, WANG Y Z, SHI Y X,et al. Controllable synthesis of multicolor-light-emitting carbon dots via gas-liquid repetitive pulsed discharges: the role of graphitic nitrogen. Small, 2025, 21(47): e07818. [38] WATMANEE S, KLINAUBOL T, NGANGLUMPOON R,et al. Origin of surface-bonded oxygen on dendritic Ag particles towards 3D-nanocrystalline carbon formation during CO2 electrochemical reduction reaction. Chemical Engineering Journal, 2024, 480: 148182. [39] WEI X J, CHENG F, YAO Y,et al. Facile synthesis of a carbon dots and silver nanoparticles (CDs/AgNPs) composite for antibacterial application. RSC Advances, 2021, 11(30): 18417. [40] PAN M M, YE W H, ZHANG R Z,et al. Engineering smart bimetallic ionic-site MOF nanozyme nanocomposites for microenvironment-responsive dynamic therapy of periapical periodontitis. ACS Nano, 2026, 20(9): 7652. [41] ZHA J J, SUN T, KONG L,et al. Plasma synthesis of amine-fluorocarbon polymer functionalized mesoporous silica-supported silver nanoparticles for enhanced antibacterial efficacy. Chemical Engineering Journal, 2025, 522: 167038. [42] AMJAD M, ZENG Z H, LI H Z,et al. Eco-engineered silver nanoparticles for multifunctional cotton fabric with integrated UV protection, antimicrobial efficacy and thermal regulation. Chemical Engineering Journal, 2026, 531: 174111. [43] XIE X L, SUN T C, XUE J Z,et al. Ag nanoparticles cluster with pH-triggered reassembly in targeting antimicrobial applications. Advanced Functional Materials, 2020, 30(17): 2000511. [44] NAM K M, LI C H, COCKX B J R,et al. Dissecting the physics of bacterial biofilms with agent-based simulations. Current Opinion in Solid State and Materials Science, 2025, 37: 101228. [45] DU Y D, ZHENG M.Silver nanoparticles/carbon dots nanocomposite with potent antibiofilm and long-term antimicrobial activity doped into chitosan/polyvinyl alcohol film for food preservation.International Journal of Biological Macromolecules, 2024, 283: 137744. |