Page 95 - 《精细化工》2021年第12期
P. 95
第 12 期 张 伟,等: 上转换发光材料在不同防伪领域的研究进展 ·2457·
[32] ZHANG Y H, ZHANG L X, DENG R R, et al. Multicolor barcoding security encoding[J]. Science China Materials, 2019, 62(3): 368-378.
in a single upconversion crystal[J]. Journal of the American [50] YOU M L, LIN M, WANG S R, et al. Three-dimensional quick
Chemical Society, 2014, 136(13): 4893-4896. response code based on inkjet printing of upconversion fluorescent
[33] AUZEL F. Upconversion and anti-stokes processes with f and d ions nanoparticles for drug anti-counterfeiting[J]. Nanoscale, 2016, 8(19):
in solids[J]. Chemical Reviews, 2004, 104(1): 139-174. 10096-10104.
[34] ELISEEVA S V, BÜNZLI J C G. Lanthanide luminescence for [51] YAO W J, TIAN Q Y, LIU J, et al. Large-scale synthesis and screen
3+
3+
3+
3+
functional materials and bio-sciences[J]. Chemical Society Reviews, printing of upconversion hexagonal-phase NaYF 4:Yb ,Tm /Er /Eu
2010, 39(1): 189-227. plates for security applications[J]. Journal of Materials Chemistry C,
[35] WU Y F S, WU W. Combinations of superior inorganic phosphors 2016, 4(26): 6327-6335.
for level-tunable information hiding and encoding[J]. Advanced [52] KUMAR P, DWOVEDI J, GUPTA B K. Highly luminescent dual
Optical Materials, 2021: 2100281. mode rare-earth nanorod assisted multi-stage excitable security ink
[36] XIE M (谢曼), GAN Y (干勇), WANG H (王慧). Research on new for anti-counterfeiting applications[J]. Journal of Materials Chemistry
material power strategy by 2035[J]. Strategic Study of CAE (中国工 C, 2014, 2(48): 10468-10475.
程科学), 2020, 22(5): 1-9. [53] KEDAWAT G, SINGH S, GUPTA B K. A novel approach to design
[37] ZHU M G (朱明刚), SUN X (孙旭), LIU R H (刘荣辉), et al. luminomagnetic pigment formulated security ink for manifold
Development strategies for rare earth functional materials by 2035[J]. protection to bank cheques against counterfeiting[J]. Advanced
Strategic Study of CAE (中国工程科学), 2020, 22(5): 37-43. Materials Technologies, 2021, 6(2): 2000973.
[38] LIU M, WANG S W, ZHANG J, et al. Upconversion luminescence [54] WANG S X, CHEN J K, LIN J D, et al. Nanocrystallization of
3+
3+
of Y 3Al 5O 12(YAG):Yb ,Tm nanocrystals[J]. Optical Materials, lanthanide-doped KLu 2F 7-KYb 2F 7 solid-solutions in aluminosilicate
2007, 30(3): 370-374. glass for upconverted solid-state-lighting and photothermal anti-
[39] ZHANG F, WAN Y, YU T, et al. Uniform nanostructured arrays of counterfeiting[J]. Journal of Materials Chemistry C, 2019, 7(46):
sodium rare-earth fluorides for highly efficient multicolor 14571-14580.
upconversion luminescence[J]. Angewandte Chemie International [55] LIU X W, WANG Y, LI X Y, et al. Binary temporal upconversion
2+
Edition, 2007, 46(42): 7976-7979. codes of Mn -activated nanoparticles for multilevel anti-
[40] ZHANG W (张伟), LIAO Z F (廖正芳), A ERPUDING·AI counterfeiting[J]. Nature Communications, 2017, 8: 899.
NIWAER (阿尔普丁·艾尼娃尔), et al. Preparation and properties of [56] LIU X W, JI Q, HU Q Y, et al. Dual-mode long-lived luminescence
2+
a luminescent thermo-sensitive hydrogel doped with upconversion of Mn -doped nanoparticles for multilevel anticounterfeiting[J].
nanoparticles[J]. Fine Chemicals (精细化工), 2020, 37(2): 270-277. ACS Applied Materials & Interfaces, 2019, 11(33): 30146-30153.
[41] WANG F, DENG R R, LIU X G. Preparation of core-shell NaGdF 4 [57] CHEN X, YAO W J, WANG Q, et al. Designing multicolor dual-
nanoparticles doped with luminescent lanthanide ions to be used as mode lanthanide-doped NaLuF 4/Y 2O 3 composites for advanced
upconversion-based probes[J]. Nature Protocols, 2014, 9(7): 1634-1644. anticounterfeiting[J]. Advanced Optical Materials, 2020, 8(2): 1901209.
[42] ZHANG W, LIAO Z F, MENG X Q, et al. Fast coating of hydrophobic [58] GONG G, SONG Y, TAN H H, et al. Design of core/active-shell
3+
3+
upconversion nanoparticles by NaIO 4-induced polymerization of NaYF 4:Ln @NaYF 4:Yb nanophosphors with enhanced red-green-
dopamine: Positively charged surfaces and in situ deposition of Au blue upconversion luminescence for anti-counterfeiting printing[J].
nanoparticles[J]. Applied Surface Science, 2020, 527: 146821. Composites Part B: Engineering, 2019, 179: 107504.
[43] LIU D M, XU X X, DU Y, et al. Three-dimensional controlled [59] WU W N, LIU H Z, YUAN J, et al. Nanoemulsion fluorescent inks
growth of monodisperse sub-50 nm heterogeneous nanocrystals[J]. for anti-counterfeiting encryption with dual-mode, full-color, and
Nature Communications, 2016, 7: 10254. long-term stability[J]. Chemical Communications, 2021, 57(40): 4894-
[44] SUN J Y, LAN Y J, XIA Z G, et al. Sol-gel synthesis and green 4897.
3+
3+
upconversion luminescence in BaGd 2(MoO 4) 4:Yb ,Er phosphors[J]. [60] MA Q Q, WANG J, LI Z H, et al. Near-infrared-light-mediated
Optical Materials, 2011, 33(3): 576-581. high-throughput information encryption based on the inkjet printing
[45] GUNASEELAN M, YAMINI S, KUMAR G A, et al. Highly of upconversion nanoparticles[J]. Inorganic Chemistry Frontiers,
3+
3+
efficient upconversion luminescence in hexagonal NaYF 4:Yb ,Er 2017, 4(7): 1166-1172.
nanocrystals synthesized by a novel reverse microemulsion method[J]. [61] HUANG H, CHEN J K, LIU Y T, et al. Lanthanide-doped
Optical Materials, 2018, 75: 174-186. core@multishell nanoarchitectures: Multimodal excitable upconverting/
[46] SANG J K, ZHOU J Y, ZHANG J Z, et al. Multilevel static-dynamic downshifting luminescence and high-level anti-counterfeiting[J].
anticounterfeiting based on stimuli-responsive luminescence in a Small, 2020, 16(19): 2000708.
niobate structure[J]. ACS Applied Materials & Interfaces, 2019, [62] TAN H H, GONG G, XIE S W, et al. Upconversion
11(22): 20150-20156. nanoparticles@carbon dots@meso-SiO 2 sandwiched core-shell
[47] YANG L, WANG Z X, ZHAO T, et al. Facile synthesize of nanohybrids with tunable dual-mode luminescence for 3D anti-
upconversion β-NaYF 4 capped with waterborne polyurethane counterfeiting barcodes[J]. Langmuir, 2019, 35(35): 11503-11511.
prepolymer for packaging anti-counterfeiting[J]. Materials Express, [63] HAN X X, SONG E H, ZHOU Y Y, et al. Photon upconversion
2018, 8(3): 199-210. afterglow materials toward visualized information coding/decoding[J].
[48] YAO W J, TIAN Q Y, LIU J, et al. Preparation and RGB Journal of Materials Chemistry C, 2020, 8(11): 3678-3687.
upconversion optic properties of transparent anti-counterfeiting [64] ZHAO S S, WANG Z B, MA Z D, et al. Achieving multimodal
3+
3+
films[J]. Nanoscale, 2017, 9(41): 15982-15989. emission in Zn 4B 6O 13:Tb ,Yb for information encryption and anti-
[49] YAO W J, TIAN Q Y, TIAN B, et al. Dual upconversion nano for counterfeiting[J]. Inorganic Chemistry, 2020, 59(21): 15681-15689.