[1] ANWAR S, DING H Z, XU M S, et al. Recent advances in synthesis, optical properties, and biomedical applications of carbon dots [J]. ACS Applied Bio Materials, 2019, 2(6): 2317-2338. doi: 10.1021/acsabm.9b00112
[2] CHU X H, WU F, SUN B H, et al. et al. Genipin cross-linked carbon dots for antimicrobial, bioimaging and bacterial discrimination [J]. Colloids and Surfaces B-Biointerfaces, 2020, 190(11): 930-937.
[3] TU Y J, WANG S P, YUAN X T, et al. A novel fluorescent nitrogen, phosphorus-doped carbon dots derived from Ganoderma Lucidum for bioimaging and high selective two nitrophenols detection [J]. Dyes and Pigments, 2020, 178(10): 8316-8323.
[4] HEKMAT M, ROSTAMYAN F, SHAFIEKHANI A, et al. Barrier coating and plasmonic effect by using diamond-like carbon and silver nanoparticles on quantum dots sensitize solar cells [J]. Semiconductor Science and Technology, 2020, 35(4): 5019-5025.
[5] QIN Z X, WANG W H, WEN M, et al. Multicolor emissive sulfur, nitrogen co-doped carbon dots and their application in ion detection and solid lighting [J]. Spectrochimica Acta Part a-Molecular and Biomolecular Spectroscopy, 2020, 229(11): 7859-7866.
[6] ACHILLEOS DS, KASAP H, REISNER E. Photocatalytic hydrogen generation coupled to pollutant utilisation using carbon dots produced from biomass [J]. Green Chemistry, 2020, 22(9): 2831-2839. doi: 10.1039/D0GC00318B
[7] SONG S L, WU K, WU H D, et al. Multi-shelled ZnO decorated with nitrogen and phosphorus co-doped carbon quantum dots: synthesis and enhanced photodegradation activity of methylene blue in aqueous solutions [J]. RSC Advances, 2019, 9(13): 7362-7374. doi: 10.1039/C9RA00168A
[8] BAIG MMF, CHEN Y C. Bright carbon dots as fluorescence sensing agents for bacteria and curcumin [J]. Journal of Colloid and Interface Science, 2017, 501: 341-349. doi: 10.1016/j.jcis.2017.04.045
[9] VENKATESWARLU S, VISWANATH B, REDDY AS, et al. Fungus-derived photoluminescent carbon nanodots for ultrasensitive detection of Hg2+ ions and photoinduced bactericidal activity [J]. Sensors and Actuators B-Chemical, 2018, 258: 172-175. doi: 10.1016/j.snb.2017.11.044
[10] YUAN X T, TU Y J, CHEN W, et al. Facile synthesis of carbon dots derived from ampicillin sodium for live/dead microbe differentiation, bioimaging and high selectivity detection of 2, 4-dinitrophenol and Hg(Ⅱ) [J]. Dyes and Pigments, 2020, 175(10): 8187-8197.
[11] MURUGAN N, PRAKASH M, JAYAKUMAR M, et al. Green synthesis of fluorescent carbon quantum dots from Eleusine coracana and their application as a fluorescence 'turn-off ' sensor probe for selective detection of Cu2+ [J]. Applied Surface Science, 2019, 476: 468-480. doi: 10.1016/j.apsusc.2019.01.090
[12] MU Y X, ZHUANG Q F, HUANG S P, et al. Adenine-stabilized carbon dots for highly sensitive and selective sensing of copper(II) ions and cell imaging [J]. Spectrochimica Acta. Part A-Molecular and Biomolecular Spectroscopy, 2020, 239: 118531-118539. doi: 10.1016/j.saa.2020.118531
[13] ATHIKA M, PRASATH A, DURAISAMY E, et al. Carbon-quantum dots derived from denatured milk for efficient chromium-ion sensing and supercapacitor applications [J]. Materials Letters, 2019, 241: 156-159. doi: 10.1016/j.matlet.2019.01.064
[14] WANG M, SHI R, GAO M J, et al. Sensitivity fluorescent switching sensor for Cr (Ⅵ) and ascorbic acid detection based on orange peels-derived carbon dots modified with EDTA [J]. Food Chemistry, 2020, 318(12): 6506-6517.
[15] DENG X Y, FENG Y L, LI H R, et al. N-doped carbon quantum dots as fluorescent probes for highly selective and sensitive detection of Fe3+ ions [J]. Particuology, 2018, 41: 94-100. doi: 10.1016/j.partic.2017.12.009
[16] ATCHUDAN R, EDISON TNJI, ASEER KR, et al. Highly fluorescent nitrogen-doped carbon dots derived from Phyllanthus acidus utilized as a fluorescent probe for label-free selective detection of Fe3+ ions, live cell imaging and fluorescent ink [J]. Biosensors & Bioelectronics, 2018, 99: 303-311.
[17] LIANG Y, XU L X, TANG K, et al. Nitrogen-doped carbon dots used as an "on-off-on" fluorescent sensor for Fe3+ and glutathione detection [J]. Dyes and Pigments, 2020, 178(10): 8358-8367.
[18] YANG Q F, HONG H, LUO Y K. Heterogeneous nucleation and synthesis of carbon dots hybrid Zr-based MOFs for simultaneous recognition and effective removal of tetracycline [J]. Chemical Engineering Journal, 2020, 392(12): 3680-3690.
[19] ZHAO N, WANG Y, HOU S S, et al. Functionalized carbon quantum dots as fluorescent nanoprobe for determination of tetracyclines and cell imaging [J]. Mikrochimica Acta, 2020, 187(6): 351-351. doi: 10.1007/s00604-020-04328-1
[20] HU Y P, GAO Z J. Sewage sludge in microwave oven: A sustainable synthetic approach toward carbon dots for fluorescent sensing of para-Nitrophenol [J]. Journal of Hazardous Materials, 2020, 382(12): 1048-1055.
[21] QIN K H, ZHANG D F, DING Y F, et al. Applications of hydrothermal synthesis of Escherichia coli derived carbon dots in in vitro and in vivo imaging and p-nitrophenol detection [J]. Analyst, 2020, 145(1): 177-183. doi: 10.1039/C9AN01753D
[22] ZHANG S T, ZHANG D F, DING Y F, et al. Bacteria-derived fluorescent carbon dots for highly selective detection of p-nitrophenol and bioimaging [J]. Analyst, 2019, 144(18): 5497-5503. doi: 10.1039/C9AN01103J
[23] ZHAO M Y, GAO X, TAO Z H, et al. Sugar-metabolism-triggered pathogenic bacteria identification based on pH-sensitive fluorescent carbon dots [J]. Sensors and Actuators B-Chemical, 2020, 316(12): 8063-8071.
[24] SAAD SM, ABDULLAH J, ABD RASHID S, et al. A carbon dots based fluorescence sensing for the determination of Escherichia coli O157: H7 [J]. Measurement, 2020, 160(10): 7845-7855.
[25] 曲可琪, 尤月, 程扬, 等. 香菇碳量子点的制备及其对Fe3+的响应 [J]. 功能材料, 2019, 50(9): 9125-9220. QU K Q, YOU Y, CHENG Y, et al. Preparation of carbon quantum dots derived from mushroom and their response to Fe3+ [J]. function materials, 2019, 50(9): 9125-9220(in Chinese).
[26] NAN Z Z, HAO C C, ZHANG X G, et al. Carbon quantum dots (CQDs) modified ZnO/CdS nanoparticles based fluorescence sensor for highly selective and sensitive detection of Fe(Ⅲ) [J]. Spectrochimica Acta Part A-Molecular and Biomolecular Spectroscopy, 2020, 228(11): 7717-7724.
[27] LI W, FAN X L, LIU B X, et al. Synthesis of microscale zinc-copper bimetallic particles and their performance toward p-nitrophenol removal: Characterization, mineralization, and response surface methodology [J]. Environmental Engineering Science, 2020, 37(4): 263-271. doi: 10.1089/ees.2019.0433
[28] LIU S Y, LAI C, LI B S, et al. Role of radical and non-radical pathway in activating persulfate for degradation of p-nitrophenol by sulfur-doped ordered mesoporous carbon [J]. Chemical Engineering Journal, 2020, 384(12): 3304-3314.
[29] HUA X W, BAO Y W, WANG H Y, et al. Bacteria-derived fluorescent carbon dots for microbial live/dead differentiation [J]. Nanoscale, 2017, 9(6): 2150-2161. doi: 10.1039/C6NR06558A
[30] ZHAO S J, LAN M H, ZHU X Y, et al. Green synthesis of bifunctional fluorescent carbon dots from garlic for cellular imaging and free radical scavenging [J]. ACS Applied Materials & Interfaces, 2015, 7(31): 17054-17060.
[31] ZHANG L X, ZHANG Z S, GAO Z W, et al. Facile synthesis of N, B-co-doped carbon dots with the gram-scale yield for detection of iron (Ⅲ) and Escherichia coli[J]. Nanotechnology, 2020, 31(39):395702-395711 .
[32] GAO Z, ZHAO C X, LI Y Y, et al. Beer yeast-derived fluorescent carbon dots for photoinduced bactericidal functions and multicolor imaging of bacteria [J]. Applied Microbiology and Biotechnology, 2019, 103(11): 4585-4593. doi: 10.1007/s00253-019-09782-3
[33] ZULFAJRI M, GEDDA G, CHANG C J, et al. Cranberry beans derived carbon dots as a potential fluorescence sensor for selective detection of Fe3+ ions in aqueous solution[J]. ACS Omega, 2019, 4(13): 15382-15392.
[34] SAHOO NK, JANA GC, AKTARA MN, et al. Carbon dots derived from lychee waste: Application for Fe3+ ions sensing in real water and multicolor cell imaging of skin melanoma cells [J]. Materials Science & Engineering C-Materials for Biological Applications, 2020, 108(11): 429-441.
[35] HU Q, SUN H J, ZHOU X Y, et al. Bright-yellow-emissive nitrogen-doped carbon nanodots as a fluorescent nanoprobe for the straightforward detection of glutathione in food samples [J]. Food Chemistry, 2020, 325(12): 6946-6955.