参考文献 References
[1] Andy B, Christophe C. Interpol review of fingermarks and other body impressions (2019 – 2022)[J]. Forensic Science International: Synergy, 2023,6100304-100304.
[2] 赵科,赵韬.粉末法在指纹显现中的运用[J].湖南公安高等专科学校学报,2008,(01):94-98.
[3] Ramotowski S R. Lee and Gaensslen's Advances in Fingerprint Technology, Third Edition[M]. Taylor and Francis; CRC Press:2012-08-21:
[4] 代雪晶,汤澄清,李云鹏,等.埃及蓝矿物质颜料荧光光谱测定及其在指印显现中的应用[J].光谱学与光谱分析, 2025,45(05):1383-1388.
[5] 刘丽.系列光致发光材料的制备及其在痕迹物证提取中的应用研究[D].东北大学,2016.
[6] Yang Y, Liu R, Cui Q, et al. Red-emissive conjugated oligomer/silica hybrid nanoparticles with high affinity and application for latent fingerprint detection[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2019, 565118-130.
[7] Algarra M, Bartolić D, Radotić K, et al. P-doped carbon nano-powders for fingerprint imaging[J]. Talanta, 2019, 194150-157.
[8] Wu P, Xu C, Hou X, et al. Dual-emitting quantum dot nanohybrid for imaging of latent fingerprints: simultaneous identification of individuals and traffic light-type visualization of TNT[J]. Chemical Science, 2015, 6(8): 4445-4450.
[9] Wang L, Gu W, An Z, et al. Shape-controllable synthesis of silica coated core/shell upconversion nanomaterials and rapid imaging of latent fingerprints[J]. Sensors and Actuators: B. Chemical, 2018, 26619-25.
[10] Jikai W, Ni H, Yanli Z, et al. Highly-luminescent Eu, Sm, Mn-doped CaS up/down conversion nano-particles: application to ultra-sensitive latent fingerprint detection and in vivo bioimaging[J]. Chemical communications (Cambridge, England), 2018, 54(6):591-594.
[11] Ya-Long W, Chong L, Hong-Qing Q, et al. Real-Time Fluorescence In Situ Visualization of Latent Fingerprints Exceeding Level 3 Details Based on Aggregation-Induced Emission[J]. Journal of the American Chemical Society, 2020, 142(16):7497-7505.
[12] Lai Y, Teng X, Zhang Y, et al. Double stranded DNA-templated copper nanoclusters as a novel fluorescent probe for label-free detection of rutin[J]. Analytical Methods, 2019, 11(28):3584-3589.
[13] Lin F, Gui C, Wen W, et al. Dopamine assay based on an aggregation-induced reversed inner filter effect of gold nanoparticles on the fluorescence of graphene quantum dots[J]. Talanta, 2016, 158292-298.
[14] Song Q, Wang R, Sun F, et al. A nuclease-assisted label-free aptasensor for fluorescence turn-on detection of ATP based on the in situ formation of copper nanoparticles[J]. Biosensors and Bioelectronics, 2017, 87760-763.
[15] Qing, Taiping, Qing, et al. dsDNA-templated fluorescent copper nanoparticles: poly(AT-TA)-dependent formation [J]. RSC Advances, 2014, 4(105):61092-61095.
[16] Han B, Wang E. Oligonucleotide-stabilized fluorescent silver nanoclusters for sensitive detection of biothiols in biological fluids[J]. Biosensors and Bioelectronics, 2010, 26(5):2585-2589.
[17] Bourdon J. Growth and properties of metal clusters[M]. Amsterdam: Elsevier Scientific, 1980.
[18] Brus L. Electronic wave functions in semiconductor clusters: experiment and theory[J]. J. Phys. Chem. C, 1986, 90(12): 2 555-2 560.
[19] Selva J, Martínez SE, Buceta D, et al. Silver sub-nanoclusters electro catalyze ethanol oxidation and provide protection against ethanol toxicity in cultured mammalian cells[J]. Am Chem Soc. 2010 May 26;132(20):6947-54.
[20] Peyser L A, Vinson A E, Bartko A P, et al. Photoactivated Fluorescence from Individual Silver Nanoclusters[J]. Science (New York, N.Y.), 2001, 291(5501): 103-106.
[21] Chang S S, Shih C W, Chen C D, et al. The shape transition of gold nanorods[J]. Langmuir, 1999, 15(3):701-709.
[22] Qiu S, Dong J, Chen G. Preparation of Cu Nanoparticles from Water-in-Oil Microemulsions[J]. Colloid Interface Sci. 1999 Aug 15; 216(2):230-234.
[23] Vazquez-Vazquez C, Banobre-Lopez M, Mitra A, et al. Synthesis of small atomic copper clusters in microemulsions[J]. Langmuir, 2009, 25(14):8208-8216.
[24] Kumar R K, Sagar S, Partha H. Ultrafast Fluorescence Dynamics of Highly Stable Copper Nanoclusters Synthesized inside the Aqueous Nano pool of Reverse Micelles[J]. The Journal of Physical Chemistry C, 2018, 122(10): 5742-5752.
[25] López-Quintela M, Tojo C ,Blanco M , et al. Microemulsion dynamics and reactions in microemulsions[J]. Current Opinion in Colloid & Interface Science, 2004, 9(3):264-278.
[26] Hideya K, Yuka K, Yuki M, et al. Microwave-assisted polyol synthesis of copper nanocrystals without using additional protective agents[J]. Chemical communications (Cambridge, England), 2011, 47(27):7740-2.
[27] Mooradian A. Photoluminescence of metals[J]. Physical Review Letters, 1969, 22(5): 185
[28] Bain D, Maity S, Paramanik B, et al. Core-Size Dependent Fluorescent Gold Nanoclusters and Ultrasensitive Detection of Pb2+ Ion[J]. ACS Sustainable Chemistry & Engineering, 2018, 6(2):2334- 2343.
[29] Cifuentes-Rius A, Deepagan V G, Xie J, et al. Bright Future of Gold Nanoclusters in Theranostics[J]. ACS Applied Materials & Interfaces, 2021, 13(42):49581-49588.
[30] Peng S-K, Yang H, Luo D, et al. Enhancing photoluminescence efficiency of atomically precise copper(i) nanoclusters through a solvent-induced structural transformation[J]. Inorganic Chemistry Frontiers, 2022, 9(20):5327-5334.
[31] Zhang B, Chen J, Cao Y, et al. Ligand Design in Ligand-Protected Gold Nanoclusters[J]. Small, 2021, 17(27):2004381.
[32] Zhou M, Du X, Wang H, et al. The Critical Number of Gold Atoms for a Metallic State Nanocluster: Resolving a Decades-Long Question[J]. ACS Nano, 2021, 15(9):13980-13992.
[33] Das N K, Ghosh S, Priya A, et al. Luminescentcop per nanoclusters as a specific cell-imaging probe and a selective metal ion sensor[J]. J. Phys. Chem. C, 2015, 119(43):24657-24664.
[34] Liu Y, Yu J, Lun Y, et al. Ligand design in atomically precise copper nanoclusters and their application in electrocatalytic reactions [J]. Advanced Functional Materials, 2023, 33(44):2304184.
[35] Jiao M, Li Y, Jia Y, et al. Ligand-modulated aqueous synthesis of color-tunable copper nanoclusters for the photoluminescent assay of Hg (II) [J]. Mikrochim Acta, 2020, 187(10):545.
[36] Wu Z, Jin R. On the ligand's role in the fluorescence of gold nanoclusters[J]. Nano Letter, 2010, 10(7):2568-2573.
[37] Wang Z, Susha A S, Chen B, et al. Poly(vinylpyrrolidone) supported copper nanoclusters: glutathione enhanced blue photoluminescence for application in phosphor converted light emitting devices[J]. Nanoscale, 2016, 8(13):7197-7202.
[38] Lin A, Wanrun J, Zhaoyu L, et al. Engineering a red emission of copper nanocluster self-assembly architectures by employing aromatic thiols as capping ligands[J]. Nanoscale, 2017, 9(34):12618-12627.
[39] Ling Y, Wu J J, Gao Z F, et al. Enhanced emission of polyethyleneimine-coated copper nanoclusters and their solvent effect [J]. The Journal of Physical Chemistry C, 2015, 119(48):27173-27177.
[40] Yuan J, Wang L, Wang Y, et al. Stimuli-responsive fluorescent nanoswitches: solvent-induced emission enhancement of copper nanoclusters [J]. Chemistry A European Journal, 2020, 26(16):3545-3554.
[41] Zhang G, Xu T, Du H, et al. A reversible fluorescent pH-sensing system based on the one-pot synthesis of natural silk fibroin-capped copper nanoclusters [J]. Journal of Materials Chemistry C, 2016, 4(16):3540-3545.
[42] Su X, Liu J. pH-guided self-assembly of copper nanoclusters with aggregation-induced emission[J]. ACS Applied Materials & Interfaces, 2017, 9(4):3902-3910.
[43] Lu Y Z, Chen W. Sub-nanometre sized metal clusters: from synthetic challenges to the unique roperty discoveries[J]. Chemical Society Reviews, 2012, 41(9):3594-3623.
[44] Wang Y L, Cui Y Y, Liu R, et al. Blue two-p hoton fluorescence metal cluster robe recisely marking cell nuclei of two cell lines[J]. Chemical Communications, 2013, 49(91):10724-10726.
[45] Luo J, Xie Z, Lam J W Y, et al. Aggregation-induced emission of 1-methyl-1,2,3,4,5 pentaphenylsilole[J]. Chemical Communications, 2001(18):1740-1741.
[46] Li Z H, Guo S, Lu C, A highly selective fluorescence probe for sulfide ions based on aggregation of Cu nanoclusters induced emission enhancement[J]. Analyst, 2015, 140(24):2719-2725.
[47] Li R Y, Wang H Y, Zhou X Y, et al. D-Penicillamine and b ovine serum albumin co-stabilized copper nanoclusters with remarkably enhanced fluorescence intensity and hotostability for ultrasensitive detection of Ag+[J]. New Journal of Chemistry, 2016, 40(12):732-739.
[48] Zhou C, Sun D-W, Ma J, et al. Assembly-Induced Emission of Copper Nanoclusters: Revealing the Sensing Mechanism for Detection of Volatile Basic Nitrogen in Seafood Freshness On-Site Monitoring[J]. ACS Applied Materials & Interfaces, 2024, 16(5):6533-6547.
[49] Maity S, Bain D, Patra A. Engineering atomically precise copper nanoclusters with aggregation induced emission[J]. J. Phys. Chem. C, 2019, 123(4):2506- 2515.
[50] Hari S, E E D. Lipid Nanodisc-Templated Self-Assembly of Gold Nanoparticles into Strings and Rings[J]. ACS nano, 2017, 11(4):3651-3661.
[51] Weihua Y, Yongjun Q, Yucong F, et al. A Fluorescent Probe Based on Polyethyleneimine Protected Copper Nanoclusters for the Assay of Tetracycline Hydrochloride and Vitamin B12[J]. ChemistrySelect, 2021, 6(40):10889-10897.
[52] Shraddha B, Z.V.P. M, Kumar S K. Synthesis of red emissive copper nanoclusters with 2-mercaptopyrimidine for promoting selective and sensitive fluorescent sensing of creatinine as a kidney disease biomarker in biofluids[J]. Journal of Molecular Liquids, 2022, 368(PA).
[53] Jiao M, Xin C, Kaide O, et al. A luminescent sensor based on in-situ formed copper nanocluster-loading terbium coordination polymer with multicolor response for identification of antibiotics[J]. Sensors and Actuators: B. Chemical, 2023, 390.