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Dive into the research topics where Xiaojun Wang is active.

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Featured researches published by Xiaojun Wang.


Chemical Communications | 2011

Tunable full-color-emitting Ca3Sc2Si3O12:Ce3+, Mn2+ phosphor via charge compensation and energy transfer

Yongfu Liu; Xia Zhang; Zhendong Hao; Xiaojun Wang; Jiahua Zhang

A tunable full-color-emitting Ca(3)Sc(2)Si(3)O(12):Ce(3+), Mn(2+) (CSS:Ce(3+),Mn(2+)) phosphor is obtained by addition of doped ions as charge compensation. White LEDs with high R(a) (> 90) are achieved using the single CSS:Ce(3+),Mn(2+) phosphor.


Inorganic Chemistry | 2011

Tunable full-color emitting BaMg2Al6Si9O30:Eu2+,Tb3+,Mn2+phosphors based on energy transfer

Wei Lu; Zhendong Hao; Xia Zhang; Yongshi Luo; Xiaojun Wang; Jiahua Zhang

A series of single-phase full-color emitting BaMg(2)Al(6)Si(9)O(30):Eu(2+), Tb(3+), Mn(2+) phosphors has been synthesized by solid-state reaction. Energy transfer from Eu(2+) to Tb(3+) and Eu(2+) to Mn(2+) in BaMg(2)Al(6)Si(9)O(30) host matrix is studied by luminescence spectra and energy-transfer efficiency and lifetimes. The wavelength-tunable white light can be realized by coupling the emission bands centered at 450, 542, and 610 nm ascribed to the contribution from Eu(2+) and Tb(3+) and Mn(2+), respectively. By properly tuning the relative composition of Tb(3+)/Mn(2+), chromaticity coordinates of (0.31, 0.30), high color rendering index R(a) = 90, and correlated color temperature (CCT) = 5374 K can be achieved upon excitation of UV light. Thermal quenching properties reveal that BaMg(2)Al(6)Si(9)O(30): Eu(2+), Tb(3+), Mn(2+) exhibits excellent characteristics even better than that of YAG:Ce. Our results indicate our white BaMg(2)Al(6)Si(9)O(30):Eu(2+), Tb(3+), Mn(2+) can serve as a key material for phosphor-converted light-emitting diode and fluorescent lamps.


Journal of Materials Chemistry | 2011

Generating yellow and red emissions by co-doping Mn2+ to substitute for Ca2+ and Sc3+ sites in Ca3Sc2Si3O12:Ce3+ green emitting phosphor for white LED applications

Yongfu Liu; Xia Zhang; Zhendong Hao; Yongshi Luo; Xiaojun Wang; Jiahua Zhang

We report luminescence properties of Ce3+ and Mn2+ co-activated Ca3Sc2Si3O12 (CSS) silicate garnets. It is observed that Mn2+ may not only occupy Ca2+ sites to generate a yellow emission (Mn2+(I)) at 574 nm but also Sc3+ sites to generate a red emission (Mn2+(II)) at 680 nm. Considerable Mn2+ substitution for Sc3+ can be performed through balancing their charge difference by introducing a trivalent rare earth ion, such as La3+ and Ce3+, to replace Ca2+. Meanwhile, remarkable energy transfer from the green emitting Ce3+ to both Mn2+(I) and Mn2+(II) can occur, making tunable color and white light emission available in CSS:Ce3+,Mn2+ upon blue excitation into Ce3+. White LEDs combined by CSS:Ce3+,Mn2+ phosphors and blue LED chips are fabricated. A CSS:0.03Ce3+,0.2Mn2+ phosphor with deficient red emission is enriched in red by increasing Ce3+ concentration to 0.1, which leads to increase of Mn2+(II) number in case of charge compensation by more Ce3+ ions. Consequently, the color rendering index of the white LEDs is improved from 64 to 76. The results of this work indicate that CSS:Ce3+,Mn2+ garnet could be a promising single phase phosphor for white LEDs.


Journal of Materials Chemistry | 2011

Generation of broadband emission by incorporating N3− into Ca3Sc2Si3O12 : Ce3+ garnet for high rendering white LEDs

Yongfu Liu; Xia Zhang; Zhendong Hao; Xiaojun Wang; Jiahua Zhang

Adding Si3N4 into green emitting Ca3Sc2Si3O12u2006:u2006Ce3+ garnet phosphor generates an additionally red emission band peaking around 610 nm that are assigned to Ce3+ ions having N3− in their local coordination. The excitation spectrum of the red band consists of not only a distinct band at 510 nm of itself but also an intense blue band at 450 nm that belongs to the typical Ce3+ ions with green emission, indicating a notable energy transfer from the green emitting Ce3+ ions to the red ones. The energy transfer significantly enables the achievement of a broad emission spectrum covering a red and green spectral region suitable for generating white light upon a blue light-emitting diode (LED) excitation. The decay patterns of the red and green fluorescence are discussed in relation to the effect of energy transfer. A white LED with high color rendering of 86 and low correlated color temperature of 4700 K is fabricated using the present single garnet phosphor.


Journal of Materials Chemistry | 2011

Color control and white light generation of upconversion luminescence by operating dopant concentrations and pump densities in Yb3+, Er3+ and Tm3+ tri-doped Lu2O3 nanocrystals

Yanping Li; Jiahua Zhang; Yongshi Luo; Xia Zhang; Zhendong Hao; Xiaojun Wang

We synthesized a series of Yb3+, Er3+ and Tm3+ tri-doped Lu2O3 nanocrystals with various dopant concentrations by the hydrothermal approach. Due to a unique electronic state at the top of the valence band, Lu2O3 based materials exhibit intense upconversion luminescence involving 1G4 → 3H6 of Tm3+ in blue, (2H11/2, 4S3/2) → 4I15/2 in green and 4F9/2 → 4I15/2 in red of Er3+ upon near infrared excitation at 980 nm. The variation of upconversion spectra and color points with dopant concentrations and pump densities are studied in detail on the basis of energy transfer processes. An ideal white upconversion light with color coordinates of (0.327, 0.339) is obtained by controlling the intensity of red, green, and blue emission in Lu1.906Yb0.08Er0.008Tm0.006O3nanocrystals under a pump density of 8 W cm−2. Based on the present experimental data, we may predict the dopant concentrations and pump densities for any color point within or around the white light region in the tri-doped Lu2O3 nanocrystals.


Journal of Applied Physics | 2010

Interionic energy transfer in Y3Al5O12:Ce3+, Pr3+ phosphor

Lei Wang; Xia Zhang; Zhendong Hao; Yongshi Luo; Jiahua Zhang; Xiaojun Wang

We present an investigation of dynamical processes of nonradiative energy transfer (ET) between Ce3+ and Pr3+, and between Pr3+ ions in Y3Al5O12:Ce3+, Pr3+ phosphor. Photoluminescence spectroscopy and fluorescence decay patterns are studied as a function of Pr3+ and Ce3+ concentrations. The analysis based on Inokuti–Hirayama model indicates that the ET from the lowest 5d state of Ce3+ to the D12 state of Pr3+, and the quenching of the D12 state through a cross relaxation involving Pr3+ ions in the ground state are both governed by electric dipole–dipole interaction. An increase in the Ce3+–Pr3+ ET rate followed by the enhanced red emission line of Pr3+ relative to the yellow emission band of Ce3+ on only increasing Ce3+ concentration is observed. This behavior is attributed to the increase in the spectral overlap integrals between Ce3+ emission and Pr3+ excitation due to the fact that the yellow band shifts to the red spectral side with increasing Ce3+ concentration while the red line dose not move. For C...


Optics Express | 2010

Near Infrared Long-Persistent Phosphorescence in La 3 Ga 5 GeO 14 :Cr 3+ Phosphor

Wuzhao Yan; Feng Liu; Yi-Ying Lu; Xiaojun Wang; Min Yin; Zhengwei Pan

Near infrared (NIR; 660-1300 nm) long-persistent phosphorescence from Cr(3+) ions with persistence time of more than 1 hour was realized in La(3)Ga(5)GeO(14):Cr(3+) phosphor (with or without co-dopants such as Li(+), Zn(2+), Ca(2+), Mg(2+) and Dy(3+)). The NIR phosphorescence can be effectively achieved under UV illumination (~240-360 nm) but is barely achieved by blue light (~480 nm) irradiation, even though the blue light excitation are effective to the NIR fluorescence. The NIR phosphorescence mechanisms were discussed by measuring the irradiation energy dependence of the phosphorescence intensity.


Journal of The Electrochemical Society | 2009

Blue-Green-Emitting Phosphor CaSc2O4 : Tb3 + : Tunable Luminescence Manipulated by Cross-Relaxation

Zhendong Hao; Jiahua Zhang; Xia Zhang; Shaozhe Lu; Xiaojun Wang

Blue-green CaSc2O4:Tb3+ phosphors have been prepared by solid-state reaction. Under 254 or 276 nm light excitation, both blue and green emissions are observed, which are attributed to the characteristic 4f-4f transitions (D-5(3,4)-F-7(J), J = 6, 5, 4, 3) of Tb3+. The cross-relaxation from D-5(3) to D-5(4) states are investigated by spectroscopic and dynamic measurements. The luminescent color of CaSc2O4:Tb3+ can be tuned from blue to green by manipulating the cross-relaxation. Moreover, efficient white light is generated for fluorescence lamps by blending the blue-green CaSc2O4:Tb3+ with a red CaSc2O4:Eu3+ phosphor. (c) 2009 The Electrochemical Society. [DOI: 10.1149/1.3060382] All rights reserved.


Optics Express | 2010

Enriching red emission of Y 3 Al 5 O 12 : Ce 3+ by codoping Pr 3+ and Cr 3+ for improving color rendering of white LEDs

Lei Wang; Xia Zhang; Zhendong Hao; Yongshi Luo; Xiaojun Wang; Jiahua Zhang

Triply doped Y3Al5O12: Ce3+, Pr3+, Cr3+ phosphors are prepared by solid state reaction. The emission spectra are enriched in the red region with the luminescence of both Pr3+ and Cr3+ through Ce3+ → Cr3+ and Ce3+ → Pr3+ → Cr3+ energy transfers. The properties of photoluminescence and fluorescence decay indicates larger macroscopic Ce3+ → Cr3+ transfer rates in the triply doped phosphors in comparison to Ce3+ and Cr3+ doubly doped one, reflecting the effect of competition between Ce3+ → Cr3+ and Ce3+ → Pr3+ transfers. White LEDs fabricated using the triply doped phosphor coated on blue LED chips show a color rendering index of 81.4 higher than that either using Ce3+ and Cr3+ doubly doped or Ce3+ singly doped phosphor.


Journal of Applied Physics | 2007

Size-dependent excitation spectra and energy transfer in Tb3+-doped Y2O3 nanocrystalline

Qingyu Meng; Baojiu Chen; Wu Xu; Yanmin Yang; Xiaoxia Zhao; Weihua Di; Shaozhe Lu; Xiaojun Wang; Jiashi Sun; Lihong Cheng; Tao Yu; Yong Peng

Nanocrystal Y2O3 powders with different grain sizes and various doping concentrations of Tb3+ were prepared by an autocombustion reaction. The size and surface effects on the 4f-5d transitions and energy transfers between Tb3+ ions were studied by using x-ray diffraction, transmission electron microscopy, fluorescent spectra, and luminescent decay. It was found that the excitation spectra are composed of two parts: one is the contribution from the Tb3+ at/near the nanoparticle surfaces; another is from the Tb3+ inside the nanoparticles. The study on the concentration quenching and luminescent decay indicated that the energy transfers depopulating the D53 and D54 level were assigned to the mechanisms of electric dipole-dipole and exchange interaction, respectively. The size confinement greatly affects the energy transfer quenching the emission from the D53 level, but slightly affects the energy transfer quenching the emission from the D54 level.

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Jiahua Zhang

Chinese Academy of Sciences

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Xia Zhang

Chinese Academy of Sciences

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Zhendong Hao

Chinese Academy of Sciences

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Yongshi Luo

Chinese Academy of Sciences

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Shaozhe Lu

Chinese Academy of Sciences

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Xinguang Ren

Chinese Academy of Sciences

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Yongfu Liu

Chinese Academy of Sciences

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Wei Lu

Chinese Academy of Sciences

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Baojiu Chen

Dalian Maritime University

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Bin Li

Chinese Academy of Sciences

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