1 |
NEHRA K, DALAL A, HOODA A, et al. Lanthanides β-diketonate complexes as energy-efficient emissive materials: a review[J]. J Mol Struct, 2022, 1249: 131531.
|
2 |
WEI C, LI M A, WEI H B, et al. Advances in luminescent lanthanide complexes and applications[J]. Sci China Technol Sci, 2018, 61(9): 1265-1285.
|
3 |
LI Q, YAN B. Novel luminescent hybrids by incorporating rare earth β-diketonates into polymers through ion pairing with an imidazolium counter ion[J]. Photochem Photobiol Sci, 2013, 12(9): 1628-1635.
|
4 |
HASEGAWA Y, TATENO S, YAMAMOTO M, et al. Effective photo-and triboluminescent europium(Ⅲ) coordination polymers with rigid triangular spacer ligands[J]. Chem-A Eur J, 2017, 23(11): 2666-2672.
|
5 |
KOVACS T A, FELINTO M C F, PAOLINI T B, et al. Synthesis and photoluminescence properties of [Eu(dbm)3·PX] and [Eu(acac)3·PX] complexes[J]. J Lumin, 2018, 193: 98-105.
|
6 |
MARA D, ARTIZZU F, LAFORCE B, et al. Novel tetrakis lanthanide β-diketonate complexes: structural study, luminescence properties and temperature sensing[J]. J Lumin, 2019, 213: 343-355.
|
7 |
PEREIRA C C, DIAS S, COUTINHO I, et al. Europium(Ⅲ) tetrakis(β-diketonate) complex as an ionic liquid: a calorimetric and spectroscopic study[J]. Inorg Chem, 2013, 52(7): 3755-3764.
|
8 |
WANG Q, OGAWA K, TOMA K, et al. Smart pH sensitive luminescent hydrogel based on Eu(Ⅲ) β-diketonate complex and its enhanced photostability[J]. J Photochem Photobiol A, 2009, 201(2/3): 87-90.
|
9 |
ZENG Y, QIU B, WANG F, et al. Transparent films based on functionalized poly(ionic liquids) coordinating to photoactive lanthanide (Eu3+, Tb3+) and poly(methyl methacrylate): luminescence and chemical sensing[J]. Opt Mater, 2020, 107: 110149.
|
10 |
FRANEIS B, NOLASEO M M, BRANDAO P, et al. Efficient visible-light-excitable Eu3+ complexes for red organic light-emitting diodes[J]. Eur J Inorg Chem, 2020, 2020(14): 1260-1270.
|
11 |
SHI M, LI H, PAN M, et al. Efficient two-photon sensitized luminescence of europium(Ⅲ) complex based on hypersensitive transitions[J]. Chin Opt Lett, 2011, 9(5): 051901.
|
12 |
VAN DEUN R, NOCKEMANN P, FIAS P, et al. Visible light sensitisation of europium(Ⅲ) luminescence in a 9-hydroxyphenal-1-one complex[J]. Chem Commun, 2005, 5: 590-592.
|
13 |
ZHENG W, LI S, LI C, et al. Dramatic improvement in photostability of luminescent Eu(Ⅲ) complexes with tetraphenylimidodiphosphinate ligand[J]. J Lumin, 2014, 146: 544-549.
|
14 |
WANG Y, XIE G, CHEN J, et al. Visible-light excitable, highly transparent and luminescent films with an ultrahigh loading of a europium(Ⅲ) complex[J]. J Mater Chem C, 2022, 10(33): 11924-11930.
|
15 |
DAR W A, IFTIKHAR K. Phase controlled colour tuning of samarium and europium complexes and excellent photostability of their pva encapsulated materials. structural elucidation, photophysical parameters and the energy transfer mechanism in the Eu3+ complex by sparkle/PM3 calculations[J]. Dalton Trans, 2016, 45(21): 8956-8971.
|
16 |
EMELINA T, MIROCHNIK A, KALINOVSKAYA I. Photostability of luminescent europium(Ⅲ) hexafluoroacetylacetonates: combined theoretical and experimental study[J]. J Lumin, 2021, 238: 118274.
|
17 |
NAKAJIMA A, NAKANISHI T, KITAGAWA Y, et al. Hyper-stable organo-euiii luminophore under high temperature for photo-industrial application[J]. Sci Rep, 2016, 6(1): 24458.
|
18 |
KATAOKA H, KITANO T, TAKIZAWA T, et al. Photo-and thermo-stable luminescent beads composed of Eu(Ⅲ) complexes and pmma for enhancement of silicon solar cell efficiency[J]. J Alloys Compd, 2014, 601: 293-297.
|
19 |
OLYSHEVETS I, KARIAKA N, ZNOVJYAK K, et al. Synthesis and characterization of anionic lanthanide(Ⅲ) complexes with a bidentate sulfonylamidophosphate (SAPh) ligand[J]. Inorg Chem, 2018, 59(1): 76-85.
|
20 |
CONGIU M, ALAMIRY M, MOUDAM O, et al. Preparation and photophysical studies of [Ln(hfac)3DPEPO], Ln=Eu, Tb, Yb, Nd, Gd; interpretation of total photoluminescence quantum yields[J]. Dalton Trans, 2013, 42(37): 13537-13545.
|
21 |
SEO S J, ZHAO D, SUH K, et al. Synthesis and luminescence properties of mesophase silica thin films doped with in situ formed europium complex[J]. J Lumin, 2008, 128(4): 565-572.
|
22 |
BARRY M C, WEI Z, HE T, et al. Volatile single-source precursors for the low-temperature preparation of sodium-rare earth metal fluorides[J]. J Am Chem Soc, 2016, 138(28): 8883-8887.
|
23 |
MALINA I, KAMPARS V, BELYAKOV S. Luminescence properties of 2-benzoyl-1,3-indandione based Eu3+ ternary and tetrakis complexes and their polymer films[J]. Dyes Pigm, 2018, 159: 655-665.
|
24 |
JIMENEZ G L, ROSALES-HOZ M J, LEYVA M A, et al. Structural analysis of an europium-sodium complex containing 2-thenoyltrifluoroacetone and succinimide as ligands, a highly photoluminescent material[J]. J Mol Struct, 2021, 1228: 129778.
|
25 |
WANG X, YAN Q, CHU P, et al. Analysis on fluorescence of dual excitable Eu(TTA)3DPBT in toluene solution and PMMA[J]. J Lumin, 2011, 131(8): 1719-1723.
|
26 |
GU Y, YAO X, GENG H, et al. Highly transparent, dual-color emission, heterophase Cs3Cu2I5/CsCu2I3 nanolayer for transparent luminescent solar concentrators[J]. ACS Appl Mater Interfaces, 2021, 13(34): 40798-40805.
|
27 |
YOU Y, TONG X, WANG W, et al. Eco-friendly colloidal quantum dot-based luminescent solar concentrators[J]. Adv Sci, 2019, 6(9): 1801967.
|