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1.
It is shown that the kinetics of the charge and current passing through a thin-film electroluminescent emitter, as well as the I-V characteristics of the emitter, greatly diverge under blue, red, and IR pulsed illumination with photon energies of ≈2.6, ≈1.9, and ≈1.3 eV, respectively, and a photon flux density of 4×1014–3×1015 mm−2 s−1. Results obtained indicate that, during the operation of the emitter, deep centers associated presumably with V Zn 2− zinc vacancies and V S + and V S 2+ sulfur vacancies exchange charge. These centers lie above the valence band by ≈1.1, ≤1.9, and ≤1.3 eV, respectively. Their concentrations are estimated as (3–4)×1016 cm−3 for V Zn 2− and V S + and ≈1.5×1016 cm−3 for V S 2+ . It is demonstrated that positive and negative space charges forming in the near-anode and near-cathode regions of the phosphor layer specify the electric performance of the emitters.  相似文献   

2.
Lithium fluoride crystals were irradiated by different doses of gamma photons at a temperature of 77 K. We measured the aggregation kinetics for the color centers with different annealing temperatures above the temperature of anion vacancy mobility. We show that the lifetimes of the vacancies decrease while the lifetimes of the F2+ F_2^{+} centers increase as the irradiation dose increases. We explain these types of dependences based on the aggregation processes for color centers in the post-radiation period. We determine the time constants and energies (analogous to activation energies in the Arrhenius equation) for the various processes involving rise and fall in the concentration of aggregate color centers. Based on the experimental data obtained, we have established the processes forming F 2 and F3+ F_3^{+} centers in the post-radiation period. The F 2 centers are formed when vacancies νa add to F1- F_1^{-} centers. Vacancies arising during irradiation of the crystal participate in their creation in the first fast stage. In the long final stage, vacancies are used which appear in the post-radiation period on occurrence of the reaction F2+ F_2^{+} + H → νa + fluoride ion at the lattice site, where H is an interstitial fluorine atom. The F3+ F_3^{+} centers are formed both by merging F2+ F_2^{+} and F 1 centers and as a result of addition of vacancies to F 2 centers. In this case, vacancies are used that are generated not only during irradiation of the crystal but also in the post-radiation period. The rise in the concentration of F3+ F_3^{+} centers occurs faster than the rise in the concentration of F 2 centers.  相似文献   

3.
《Journal of luminescence》1986,36(2):101-107
Four kinds of Er3+ centers in ZnS:Er3+ thin films have been distinguished by means of laser selective excitation. Their impact cross sections in electroluminescence (EL) and absorption cross sections in photoluminescence (PL) have been compared with each other. The average value of the impact cross section of Er3+ obtained by comparing the EL intensity of Er3+ with that of Mn2+ in ZnS:ErF3, Mn2+ thin films is about 2×10−16 cm2.  相似文献   

4.
The compounds AGa11O17 (A = K, Rb, Cs) and AAl11O17 (A = Na, K, Rb) have the β-alumina structure. The Mn2+-activated gallates show efficient luminescence under 254 nm excitation with an emission peaking at 498 nm and a quantum efficiency up to 70%. The Tl+-activated aluminates show efficient luminescence under 254 nm excitation with an emission peaking at 380–390 nm and a quantum efficiency up to 70%. In AAl11O17: Tl+ energy is transferred from Tl+ to Mn2+, resulting in an emission peaking at 512 nm with a quantum efficiency up to 55%.  相似文献   

5.
A method is developed for determining the mean lifetime of anion vacancies in dielectric crystals following irradiation. This method is used to study the temporal kinetics of the concentrations of vacancies and F 2+ color centers in lithium fluoride crystals irradiated by ionizing radiation. It is then possible to study the dependences of the vacancy lifetime on the concentration of F 1 color centers, temperature, and impurity content of a crystal. Vacancy and F 2+ color lifetimes determined by this method are given.  相似文献   

6.
In KI crystals doped with divalent ions (Eu2+, Sr2+, Mn2+) a strong influence of the electric field is observed, after irradiation, on the carriers (electrons and holes) recombination kinetics. The phenomena are similar whether the electrons, distributed on traps bound to divalent ions, are excited by IR at 4 K, and recombine with trapped holes (Vk centers) or whether the holes are made thermally mobile at T>77 K. It is suggested that this is due to the recombination mechanism: the kinetics are simultaneously controlled by diffusion and tunneling. The tunneling range is a function of the applied field.  相似文献   

7.
The ZnGa2O4:Mn2+, Cr3+ phosphors show three colors; the blue band of 380 nm from the charge transfer between Ga-O, the green band of 505 nm from Mn2+ and the red band of 705 nm from Cr3+. As a variation of Mn2+ or Cr3+ concentrations in ZnGa2O4:Mn2+, Cr3+, the relative emission intensity can be tuned. This phenomenon is explained in terms of the energy transfer based on four factors: the spectral overlap between the energy donors (Ga-O) and the energy accepters of Mn2+ or Cr3+, the absorption cross section of the energy accepters, the distance between them, and the decay time of the energy donors. ZnGa2O4:0.0025Mn2+, 0.010Cr3+ shows the CIE coordinates of x=0.4014, y=0.3368, which is a pure white light. The single-phased full-color emitting ZnGa2O4:Mn2+, Cr3+ phosphors can be applied to illumination devices.  相似文献   

8.
Here, we investigated the irradiation defect in reduced activation ferritic/martensitic steels by slow positron beam. Three ion-irradiation experiments were carried out: (i) He2+ irradiation, (ii) H+ irradiation and (iii) He2+ irradiation followed by H+ irradiation, at temperature 450?°C. The presences of vacancy defects, represented by ?SHe+H parameter, induced by sequential irradiations was larger than the sum of defects, ?SHe parameter + ?SH parameter, caused by single He ions and single H ions. The synergistic effect of He and H was confirmed clearly from the perspective of positron annihilation spectroscopy.  相似文献   

9.
In manganese-doped PbWO4 crystals, low-intensity signals of triclinic clusters Mn4+-V O and Fe3+-V Pb have been revealed in addition to signals of Mn2+ tetragonal centers. The Mn4+-V O cluster is formed by a Mn4+ ion in the W6+ position, which is associated with a vacancy of the nearest neighbor O2?ion, and the Fe3+-V Pb cluster consists of a Fe3+ ion substituting for Pb2+ with a local compensation of by a lead vacancy. It has been shown that, in PbWO4: Mn, there is also a small amount of Mn4+ tetragonal centers located in the Pb2+ position with a nonlocal compensation of an excess charge.  相似文献   

10.
The trielectronic recombination of an In+ (4d 105s 2 1 S 0) ion in collisions with slow electrons, including the two-electron excitation of the 5s2 core of the ion with the simultaneous capture of the triply excited 5p 3 intermediate autoionizing state with its subsequent radiative stabilization 5p 3 → 5s5p 2 + hν has been detected and experimentally examined for the first time. The maximum effective cross section of trielectronic recombination is 1.6 × 10−16 cm2, which is comparable to the effective cross sections for both dielectronic recombination and electron excitation of the In+ ion.  相似文献   

11.
Luminescent properties of Pr3+ or Mn2+ singly doped and Pr3+, Mn2+ co-doped LaMgB5O10 are investigated by synchrotron radiation VUV light. When LaMgB5O10:Pr3+ is excited at185 nm, the photon cascade emission between 4f levels of Pr3+ is observed. In the excitation spectra of LaMgB5O10:Mn2+ monitoring the 615 nm emission of Mn2+, several excitation bands in a spectral range from 330 to 580 nm are recorded, among which the most intense band is centered at 412 nm (6A1g4Eg-4A1g). This band has considerable spectra overlap with the 410 nm emission (1S01I6) of Pr3+, which is favorable for energy transfer from Pr3+ to Mn2+. Such energy transfer is observed in the co-doped sample, converting the violet emission (410 nm) of Pr3+ into the red emission (615 nm) of Mn2+. The concentration dependence of transfer efficiency is also investigated.  相似文献   

12.
Transparent Eu2+/Mn2+ co-doped new glass ceramics (GC) containing β-Zn2SiO4 nanocrystals were prepared under a reduced atmosphere. The optical properties of these samples have been investigated. The emission spectra of Eu2+/Mn2+ co-doped glass ceramics show two broadband peakings at 458 and 560 nm under ultraviolet radiation, which can be attributed to 4f65d1→4f7 transition of Eu2+ and 4T1(4G)6A1(6S) transition of Mn2+, respectively. Energy transfer (ET) from Eu2+ to Mn2+ is discovered by directly observing significant overlap of the excitation spectrum of Mn2+ and the emission spectrum of Eu2+. ET from Eu2+ to Mn2+ in glass ceramics is further confirmed by fluorescence studies performed on the samples with various activator (Mn2+) concentrations. The optimal composition generates white light with chromaticity coordinates (0.291, 0.344). The results indicate that Eu2+/Mn2+ co-doped glass ceramics is potential material for white light-emitting diodes (LEDs).  相似文献   

13.
A novel long-lasting phosphorescence phosphor, Mn2+-activated Mg2SnO4, has been synthesized and its optical properties have been investigated. The Mg2SnO4:Mn2+ emits green light with high luminance, upon UV irradiation, centered at 499 nm from the spin forbidden transitions of the d-electrons in Mn2+ ions. The CIE chromaticity coordinates of the Mg2SnO4:Mn2+ phosphor are x=0.0875 and y=0.6083 under 254 nm UV excitation. The phosphorescence can be observed by the naked eyes (0.32 mcd/m2) in the dark clearly for over 5 h after the 5 min UV irradiation. Thermoluminescence has been studied and the mechanism of the long-lasting phosphorescence has been discussed.  相似文献   

14.
The photoluminescence of Ce3+, Tb3+ and Mn2+ ions was investigated in the Zn(PO3)2 glass. The blue and green emissions of Tb3+ ions and the red emission of Mn2+ ions are enhanced upon UV excitation through a non-radiative energy transfer from Ce3+ to Tb3+ and Mn2+ ions. The efficiency of this transfer was estimated in at least 62%. It is demonstrated that this glass activated with three ions (Ce3+, Tb3+ and Mn2+) can generate white light emission (x=0.420 and y=0.423 chromaticity coordinates and 3440 K colour temperature) under excitation at 254 nm, i.e., using an AlGaN-based LED as excitation source.  相似文献   

15.
We discuss the results of the calculation of the photoionization with deexcitation of excited He and helium-like ions Li+ and B3+ at high but nonrelativistic photon energies θ. Several lower 1 S and 3 S states are considered. We present and analyze the ratios R d + * of the cross sections of photoionization with deexcitation, σ (d) + *(θ), and of the photoionization with excitation, σ+*(θ). The dependence of R d + * on the excitation of the target object and the charge of its nucleus is presented. In addition to theoretical interest, the results obtained can be verified using long-lived excited states such as 23 S of He. The text was submitted by authors in English.  相似文献   

16.
Absolute cross sections for electron-impact single ionization, dissociative excitation and dissociative ionization of the ethynyl radical ion (C2D+)^+) have been measured for electron energies ranging from the corresponding reaction thresholds to 2.5 keV. The animated crossed electron-ion beam experiment is used and results have been obtained for the production of C2D2+, C2+, C2+_2^+ , CD+, C+ and D+. The maximum of the cross section for single ionization is found to be (2.01 ± 0.02) × 10-17 cm2, at the incident electron energy of 105 eV. Absolute total cross sections for the various singly charged fragments production are observed to decrease by a factor of almost three, from the largest cross-section measured for C+, over C2+_2^+ and CD+ down to that of D+. The maxima of the cross sections are obtained to be (14.5 ± 0.5) × 10-17 cm2 for C2+_2^+, (12.1 ± 0.1) × 10-17 cm2 for CD+, (27.7 ± 0.2) × 10-17 cm2 for C+ and (11.1 ± 0.8) × 10-17 cm2 for D+. The smallest cross section is measured to be (1.50 ± 0.04) × 10-18 cm2 for the production of the doubly charged ion C2+. Individual contributions for dissociative excitation and dissociative ionization are determined for each singly-charged product. The cross sections are presented in closed analytic forms convenient for implementation in plasma simulation codes. Kinetic energy release distributions of dissociation fragments are seen to extend from 0 to 6 eV for the heaviest fragment C2+_2^+, up to 11.0 eV for CD+, 14.2 eV for C+ and 11.2 eV for D+ products.  相似文献   

17.
The green emission intensity of ZnGa2O4:Ge4+, Li+, Mn2+ excited by the vacuum ultraviolet line of 147 nm reaches 70% of commercial green Zn2SiO4:Mn2+. The vacuum ultraviolet excitation spectra consist of four peaks. In a plasma display test bed filled with Ar and Ne plasma discharged by a radio-frequency generator of 13.6 MHz, ZnGa2O4:Ge4+, Li+, Mn2+ and commercial Zn2SiO4:Mn2+ phosphor screens show a linear increase in luminance with increasing self bias voltages. Increasing gas pressures cause the luminance to increase. Also, on increasing the self bias voltages and the gas pressures, the current densities of ZnGa2O4:Ge4+, Li+, Mn2+ phosphor screens are increased; this is the same behavior as that of the commercial phosphor.  相似文献   

18.
The photoluminescence (PL) spectra, PL excitation spectra, color coordinates, and X-ray diffraction spectra are reported for SrGa2S4:Sn,Re(=Ce and Gd, respectively) phosphors. By mixing SrGa2S4:Sn,Ce phosphors with different Ce3+ concentrations, white emissions can be obtained under the excitation of a 340-nm UV LED. Emissions in the green to yellow color range can be obtained from SrGa2S4:Sn,Gd phosphors. The rare earth ions enhance the green emission band, which peaks at 534 nm, instead of the yellow one. The origin of this enhancement is discussed. The resonant energy transfer rates are estimated in the cases from Ce3+ to the green and yellow centers of Sn2+ and between the yellow centers and the green centers.  相似文献   

19.
Abstract

In the present investigation the excitation and fluorescence spectra and lifetimes of Mn2+ ions in calcium chloride, for various manganese concentrations and sample temperatures have been studied for the first time. The fluorescence spectrum consists of an asymmetric broad band, which upon lowering the sample temperature, shifts its maximum from 580 nm at 300 K to 596 nm at 11 K. This luminescence band was associated with the 4Tlg(4G)→6Alg(6S) spin-forbidden transition in the manganese ions occupying Ca-sites in the lattice of CaCl2. The excitation spectrum of the Mn2+ fluorescence revealed the features of manganese ions in octahedral coordination and consisted of nine excitation peaks which were associated with Mn2+-crystal-field-sensitive transitions. A crystal field analysis of the wavelength positions of these transitions by means of the model developed by Curie et al. allowed us to determine the magnitude of the cubic field splitting 10Dq, the reduced Racah parameter B', the Koide-Pryce covalency parameter ε and the spin transfer coefficients f [sgrave] and f σ. From the measurement of the temperature dependence of the Mn2+ fluorescence lifetime, we have also obtained information about the different mechanisms which are involved in the relaxation of excited Mn2+ ions in this host crystal in the temperature range (11–300 K).  相似文献   

20.
Photoluminescence and optical absorption spectra induced by proton and electron irradiation in zinc oxide powders have been investigated. It has been found that the emission band in a visible region with a maximum of about 2.3 eV is a superposition of three bands with 2.55, 2.34, 2.12 eV, respectively, caused by oxygen vacancies V O+, interstitial oxygen O i , and zinc vacancies V Zn absorbing in the 3.03-, 2.83-, and 2.64-eV bands.  相似文献   

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