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Fabrication and Luminescence of Anodic Alumina with Incorporated Vanadyl Citrate Chelate Anions

Stępniowski WJ
AFFILIATIONS
Department of advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Warszawa, Poland
Corresponding author (Address):
Stepniowski WJ, Department of Advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Str. Kaliskiego 2, 00-908 Warszawa, Poland, Fax: +48 22 683 94 45, Tel: +48 22 683 94 46, E-mail: wstepniowski@wat.edu.pl
, Norek M
AFFILIATIONS
Department of advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Warszawa, Poland
, Michalska-Domańska M
AFFILIATIONS
Department of advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Warszawa, Poland
, Nowak-Stępniowska A
AFFILIATIONS
Institute of Optoelectronics, Military University of Technology, Warszawa, Poland
, Kaliszewski M
AFFILIATIONS
Institute of Optoelectronics, Military University of Technology, Warszawa, Poland
, Chilimoniuk P
AFFILIATIONS
Department of advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Warszawa, Poland
, Bombalska A
AFFILIATIONS
Institute of Optoelectronics, Military University of Technology, Warszawa, Poland
and Bojar Z
AFFILIATIONS
Department of advanced Materials and Technologies, Faculty of Advanced Technologies and Chemistry, Military University of Technology, Warszawa, Poland
Received Date: April 10, 2014 Accepted Date: May 16, 2014 Published Date: May 19, 2014

Copyright: © 2014 Stępniowski WJ. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

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Abstract

Anodic aluminum oxide doped with vanadyl citrate chelate complex anions was formed by a two-step self-organized anodization in 2 wt. % sulfuric acid containing 0.04 M V2O5 and 0.08 M citric acid at voltage range 13-23 V, and at 0 and 15 oC. The combination of two temperatures and at least four voltages (depending on the applied temperature) was applied as the operating conditions of anodization. It was found that formed nanoporous alumina was doped with vanadium (up to 0.08 at. %). The analysis of the photoluminescence of the grown oxide exhibits separate bands for the incorporated vanadyl citrate chelate anions (emission maxima at λ = 270 nm) and F – centers (emission maxima at λ = 455 nm). Moreover, due to the complex electronic structure of the incorporated anions, relatively long fluorescence decays were achieved (up to 44.6 ns). Despite incorporation of relatively large anions, pore diameter and interpore distance were still linear functions of the voltage. Conducted research allowed to understand the fundamental aspects of the anions incorporation in the anodic alumina and allowed to form a new type of luminescent material.

Keywords: Anodic aluminum oxide; Nanopores; Luminescence; Self-organization

Introduction

Anodization of aluminum allows to form self-organized, hexagonally-arranged, nanoporous anodic aluminum oxide (AAO). AAO attracts researchers attention due to the unlimited applications in numerous disciplines, including: nanofabrication [1-4], sensor assembly [1,5-6], high contact angle functional surface engineering [1,7-9], photonic crystals manufacturing [10-11], organic photovoltaics [12-13], and biomaterials fabrication [1,14-16].

Typically, highly-ordered AAO is fabricated in three major electrolytes: sulfuric [17-22], oxalic [17-18,23] and phosphoric acid [8,17,18,24,25]. So formed AAO is very often subjected to post processing to add some functional properties to the nanoporous oxide. Here one can distinguish ex-situ post-fabrication molecules loading into the AAO pores by simple impregnation [26], electrophoretical deposition of polymer nanoparticles [27], magnetic field assisted deposition of nanoparticles [28]. On the other hand, Thorat et al. reported various in-situ post-fabrication techniques of anodic alumina filling with silver nanoparticles [29]. All the mentioned above techniques are dedicated to already formed nanoporous alumina, and only the surface of inner pore walls can be functionalized. In the approach presented in the paper, the AAO is being functionalized during its growth – the in-situ real-time approach is presented and described. During anodic oxide growth, anions are being attracted by the anode, including the grown anodic oxide. Then, the attracted anions are being adsorbed on the anodic oxide surface and the gradually growing oxide is embedding them. As a result, electrolyte's anions are incorporated into the AAO, as demonstrated for instance by detailed study of Le Coz et al. reporting high resolution elemental mapping of AAO [24]. Moreover, a wide range of photoluminescence (PL) studies reveals that AAO has strong photoluminescence bands originating from incorporated electrolyte's anions and F-centers [30-35]. Additionally, the fluorescence decay allows to distinguish bands originating from typical F-centers and those originating from the incorporated anions. For example, in studies reported by Li et al. [32] the F-centers fluorescence decay was shorter than 7 ns and the fluorescence decay originating from the anions was much longer, up to 46 ns. Recently Shin et al. reported incorporation of RuO42- anions into anodic titania during anodization, for catalytic purposes [36]. If the incorporation of typical anions occurs in anodic oxides, incorporation of more complex chemical individuals like chelate complexes should be also possible.

In this paper incorporation of vanadyl citrate chelate complex into AAO is accomplished. The presence of vanadyl chelate complexes is confirmed by chemical composition analysis and photoluminescence studies.

Materials and Methods

At first, series of V2O5 solutions were prepared in 2 wt. % H2SO4 with and without addition of citric acid. Spectra of V2O5 in H2SO4 and V2O5 in H2SO4 with citric acid were taken with UV–Vis Cary spectrophotometer (Varian Company) at wavelength range from 250 to 1000 nm. Solution with citric acid left overnight turned blue what confirmed appearance of VO2+ cations chelated by citrate anions (electronic transition between orbitals in accordance to the ligand field theory).

A high purity Al foil purchased from Alfa Aesar (99.9995% Puratronic) was cut into coupons (1 cm per 2.5 cm), degreased in acetone and ethanol and electropolished (Pt grid as a cathode, mixture of 4:1 ethanol: 60% HClO4 by volume, 10 oC, 0.5 A/cm2, 60 s). Anodizations were carried out in 0.04 M V2O5 with 0.08 citric acid in 2 wt. % H2SO4 in the voltage range from 13 to 23 V with step of 2 V at 0 and 15 oC. After the first, 20 h long anodization, the poorly arranged oxide was removed by chemical etching in a mixture of stirred 6 wt. % H3PO4 and 1.8 wt. % H2CrO4 at 60 oC for 90 min. After oxide removal, the re-anodization was conducted at the same set of experimental conditions like the first step.

Characterization of the anodic oxide was done with a high-resolution field emission scanning electron microscope (FE-SEM) Quanta 3D FEG (FEI, USA). Geometrical features like pore diameter and interpore distance were evaluated from three independent FE-SEM micrographs and the image analysis were performed with NIS-Elements and WSxM software [37,38]. The thickness of AAO were evaluated from cross sections.

Chemical composition of the anodic aluminum oxide was measured by use of the FE-SEM equipped with X-ray energy dispersive spectroscope (EDS) at voltage of 20 kV. The EDS analyses were performed for cross sections of AAO, to avoid any systematic errors from unoxidized aluminum beneath the porous oxide layer.

The PL spectra were taken with FL 900 spectrofluorimeter (Edinburgh Instruments) with Xe lamp, using front-surface measurement mode. The excitation spectra were taken from 245 to 400 nm and emission spectra from 260 to 550 nm what allowed to evaluate photoluminescence excitation-emission maps.

Fluorescence decays (FD) of the samples were measured with stroboscopic technique with the use of EasyLife LS system PTI. Two impulse diode modules generating 280 and 340 nm were employed for sample excitation. Wide characteristics of the diodes were corrected with filters (Semrock) FF-280/20 and FF-340/26, respectively. Long-pass filters, cutting-off excitation band, on emission path were used: FF-300LP and LP-355 for 280 and 340 nm excitation, respectively. FD characteristics were collected at room temperature using 10 averages. The pieces of the solid samples were fixed with holder with the use of quartz SuprasilTM window. The holder allowed fluorescence signal collection from the surface. Instrument Response Function (IRF) was recorded using blank aluminum sample. The procedure was conducted separately for 280 and 340 nm excitation sources. In both cases corresponding excitation filters were placed in optical paths. Deconvolution of IRF and sample signals was performed with the use of FELIX32 program. Two or three lifetime component model was chosen depending on the best fitting regarding χ2 parameter.

Results and discussion

Figure 1a shows absorption spectra of 0.04 M V2O5 dissolved in 2 wt. % H2SO4 with and without addition of 0.08 M citric acid. For solution with citric acid a distinct maximum is seen, which, according to Gryboś et al. [39] should be attributed to the electronic transitions between d-orbitals of VO2+ chelated ions (from 713 to 833 nm there are bands attributed to the dxy → dyz,dxz transitions). Additionally, according to the paper of Niklova and Niklov [40], at low pH, depending on the ligand to central cation ratio, citrate vanadyl complexes have absorption maxima at the wavelength range from 550 to 830 nm. In this work, the absorption maximum of the vanadyl citrate chelate complex is at λ = 770 nm, which is in line with the results cited above. At low wavelength region, there was extremely intensive absorption maximum at the 200 nm, attributed to the electronic transitions between the bonding and anti-bonding π orbitals (Figure 1b; recorded for diluted solution). It confirms that [VO(H2O)2(cit)]- chelate complex was formed. To incorporate desired elements into anodic aluminum oxide, they have to be in a form of anion, to be attracted by the anode. Therefore, stable chelate complex enables anodic alumina doping with VO2+ cations chelated by citrates. Nevertheless, one has to be aware that in sulfuric acid solution the citrates may protonate and various interconversions may be also take place [41]. Moreover, citrates have also one major advantage as an electrolyte modifier applied in anodization – they prevent anode from current-assisted dissolution for anodizing at low voltages [42]. Therefore, anodization at 13 V was enabled.

After two-step, self-organized anodization performed in 2 wt. % H2SO4 containing 0.04 M V2O5 and 0.08 M citric acid, nanoporous oxide was formed, with quite uniform pores and satisfying arrangement at all different anodization voltages considered (13, 15 and 17 V for Figure 2a, b and c, respectively). The oxide contained vanadium, up to 0.08 at. % (Table 1). The presence of vanadium in the form of chelate complex was aconfirmed by the recorded photoluminescence maps (Figure 2 d-f). The relevant quantitative information concerning AAO geometry and amount of incorporated vanadyl has been summarized in Tables 1 and 3, respectively.

For the lowest excitation wavelengths, starting from 245 nm, emission band with low intensity are seen on the maps, especially for AAO formed at 17 V (Figure 2 f). These can be attributed to the incorporated vanadyl citrate chelate complexes, namely to the excitation of electrons from bonding to anti-bonding π orbitals (compare to Figure 1b). It is clearly seen in the maps that in the excitation wavelengths 325 – 400 nm range strong emission occurs in the 380 – 520 nm range what can be attributed to the F centers of the anodic aluminum oxide.

Detailed PL analysis, performed for excitation wavelength of 220, 280, 340 and 380 nm, shows emission intensity maxima for most of the samples at about 455 nm (Figure 3). However, for the lowest excitation wavelength there are intensive bands with maxima at about 270 nm (Figure 3a), which have not been reported for AAO in the literature yet. Hence, these can be attributed to the incorporated vanadyl citrate chelate anions. Typical F-centers PL emission wavelengths are in the range of 440 - 500 nm [30-35], as well as the emission wavelengths of incorporated sulfate anions [32]. In general, at each anodization voltage, the greatest emission intensities were recorded for AAO formed at 15 oC (Figure 3). However obtained chemical composition analysis of the formed oxide, due to the detection threshold and small amount of incorporated chelate complex anions, does not give clear foundations for any statement about correlation between the photoluminescence and the operating conditions of the anodization process. One can also notice that for AAO formed at 15 oC at 19 V the PL intensity is the lowest one. However, for this operating conditions, anodic dissolution was dominating in several zones and the AAO was dissolved there, what affected the PL intensity.

To confirm the origin of PL bands, a fluorescence decay of AAO was investigated in details. Typically, the F-centers fluorescence decay is shorter than 7 ns and for other individuals, like incorporated anions, the decay time is longer, due to the complexity of phenomena of energy transfers between the bands of more sophisticated structures [32]. In all the cases, while the samples were excited with λexc = 280 nm, the fluorescence decay was described by three main components: two shorter than 7 ns and one much longer than 7 ns, reaching even up to approximately 45 ns (Table 2).

Therefore, the longest fluorescence decays can be surely attributed to the incorporated vanadyl chelate complex anions and the two shorter ones – to the F-centers. However, the share of the relatively long fluorescence decays was just about 1% what is caused by low content of vanadyl citrate chelate complexes (Table 1) and excitation wavelength (compare Figure 2a to Figure 2b). Nevertheless, fluorescence decays, longer than 7 ns were recorder for all the samples, what confirms the presence of relatively complex structures present in the AAO, excited with λexc = 280 nm. Analysis of fluorescence decays for AAO excited with λexc = 360 nm shows any fluorescence decays longer than 7 ns (Table 2). Therefore, all the emission bands in the range of 380 – 520 nm can be attributed to the F – centers.

Incorporation of relatively large chelate anions has not affected strongly the AAO itself. One can see quite regular pores (Figure 2) which geometrical features like pore diameter and interpore distance are still controlled by the voltage (Table 3). Pore diameter increase with the temperature is noticed (Table 3). Thus, a geometry-controllable AAO template with luminescent properties owed to the incorporated anions was formed. A phenomenological explanation of the observed effects can be given, based on a recent theoretical formulation of the AAO growth mechanism [43]. Despite local pH and viscosity fluctuations [43], the anode attracts various anions like O2- and OH-, as well as the electrolyte's anions: SO42- (Figure 4).

The chelate complex anions, present in the solution, are also attracted by the anode. Simultaneously, Al3+ are being repulsed from the anode and form alumina and aluminum oxide-hydroxide in contact with O2- and O2- with OH- respectively. On the same time, sulfate and vanadyl citrate anions are attracted and adsorbed on the oxide surface. Gradual growth of the AAO makes the adsorbed anions surrounded by the grown anodic oxide, which translates into incorporation of anionic species into the AAO (Figure 4). Therefore, both geometry control and transition metal doping of AAO can be done by operating conditions control and the formed template may have desired pore diameter, interpore distance and luminescent properties owed to the incorporated anions.

Discussion

Anodic aluminum oxide with incorporated vanadyl citrate chelate complex anions has been formed. Incorporated anionic species influence the luminescent properties of the grown oxide. The main conclusions can be summarized in few points:

  • Introduction of stabile, complex anions into electrolyte allows to form anodic alumina doped with these anions.
  • The photoluminescence of vanadyl chelate anions has excitation and emission wavelengths much shorter than F – centers, what makes them distinguishable. Moreover, fluorescence decays of the incorporated anions are relatively long and in particular cases exceeds even 40 ns.
  • Anodic alumina geometry control by operating conditions was conserved, despite the incorporation of relatively large anions.

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38 WSxM

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Tables at a glance
Table 1
Table 2
Table 3
Figures at a glance
Figure 1
Figure 2
Figure 3
Figure 4
Temperature [oC] Voltage [V] Vanadium content [at. %] Oxide layer thickness [μm] Average Current Density [mA/cm2]
0 13 0.04 ± 0.02 6.1 ± 0.1 0.1 ± 0.1
15 0.05 ± 0.01 7.5 ± 0.2 0.5 ± 0.4
17 0.04 ± 0.01 9.9 ± 0.2 0.7 ± 0.1
19 0.04 ± 0.01 13.2 ± 0.1 1.8 ± 0.7
21 0.06 ± 0.01 13.0 ± 0.3 1.8 ± 0.5
23 0.08 ± 0.02 17.0 ± 0.3 0.8 ± 0.4
15 13 0.05 ± 0.02 15.6 ± 1.2 0.7 ± 0.1
15 0.05 ± 0.01 18.0 ± 0.5 1.0 ± 0.1
17 0.05 ± 0.02 23.5 ± 0.7 1.6 ± 0.3
19 0.03 ± 0.01 23.4 ± 0.3 2.3 ± 1.0
Table 1: Percentage content of vanadium in AAO formed in 2 wt. % H2SO4 with chelate vanadyl complex additives with fabrication conditions and oxide thickness.
Temperature [oC] Voltage [V] Excitation wavelength λexc = 280 nm Excitation wavelength λexc = 340 nm
Lifetime [ns] Percentage share[%] Attribution Lifetime [ns] Percentage share[%] Attribution
0 13 No fluorescence decay analysis could be performed for AAO formed at this set of operating conditions 0.8 ± 0.1
2.6 ± 0.7
5.6 ± 0.6
82.9 ± 5.1
11.0 ± 3.4
6.2 ± 2.3
All the fluorescence was originating from F-centers
15 0.7 ± 0.1
3.2 ± 0.1
38.9 ± 3.8
73.2 ± 4.2
26.1 ± 1.0
0.8 ± 0.0
F-centers F-centers Incorporated chelate anions 1.0 ± 0.0
4.6 ± 0.1
88.1 ± 5.5
11.9 ± 0.4
17 0.7 ± 0.1
2.7 ± 0.0
44.6 ± 1.0
43.6 ± 4.6
55.1 ± 1.5
1.2 ± 0.0
F-centers F-centers Incorporated chelate anions 0.9 ± 0.0
4.6 ± 0.1
90.8 ± 5.7
9.2 ± 0.3
19 0.9 ± 0.0
3.3 ± 0.1
35.2 ± 5.2
75.83 ± 3.5
23.42 ± 1.6
0.75 ± 0.0
F-centers F-centers Incorporated chelate anions 1.1 ± 0.0
4.7 ± 0.1
85.9 ± 4.2
14.1 ± 0.5
21 0.5 ± 0.0
3.4 ± 0.1
33.5 ± 1.0
84.3 ± 5.7
14.9 ± 0.4
0.9 ± 0.0
F-centers F-centers Incorporated chelate anions 1.1 ± 0.0
4.7 ± 0.1
86.0 ± 5.2
14.0 ± 0.5
23 0.5 ± 0.1
3.1 ± 0.1
41.7 ± 3.8
81.3 ± 6.4
18.0 ± 0.8
0.7 ± 0.0
F-centers F-centers Incorporated chelate anions 1.0 ± 0.0
5.2 ± 0.1
91.0 ± 6.0
9.0 ± 0.3
15 13 0.6 ± 0.1
2.7 ± 0.0
43.8 ± 0.5
40.4 ± 6.0
58.2 ± 1.2
1.4 ± 0.0
F-centers F-centers Incorporated chelate anions 1.2 ± 0.0
5.0 ± 0.1
83.8 ± 4.3
16.2 ± 0.4
15 0.7 ± 0.0
3.3 ± 0.1
25.2 ± 1.9
80.6 ± 4.6
19.0 ± 0.1
0.4 ± 0.0
F-centers F-centers Incorporated chelate anions 1.1 ± 0.1
4.6 ± 0.1
86.4 ± 5.2
13.6 ± 0.6
17 0.7 ± 0.0
3.4 ± 0.1
16.3 ± 0.8
77.5 ± 4.1
21.2 ± 0.1
1.3 ± 0.1
F-centers F-centers Incorporated chelate anions 1.1 ± 0.1
4.6 ± 0.1
83.5 ± 5.4
16.5 ± 0.6
19 No fluorescence decay analysis could be performed for AAO formed at this set of operating conditions
Table 2: Fluorescence decay after deconvolution into three peaks of AAO formed in 2 wt. % H2SO4 with chelate vanadyl complex additives with fabrication conditions. The samples were excited with radiation wavelength of λ= 280 nm and 340 nm.
Temperature [oC] Voltage [V] Pore diameter [nm] Interpore distance [nm] Porosity [%] Pores density[μm-2 ]
0 13 21 ± 5 41 ± 1 24 ± 11 406 ± 32
15 22 ± 3 43 ± 1 24 ± 7 413 ± 54
17 23 ± 3 47 ± 1 22 ± 7 394 ± 6
19 25 ± 5 53 ± 1 20 ± 9 307 ± 8
21 27 ± 7 58 ± 5 20 ± 13 277 ± 10
23 28 ± 6 62 ± 3 18 ± 9 259 ± 13
15 13 26 ± 4 39 ± 0 40 ± 11 476 ± 69
15 26 ± 3 44 ± 0 32 ± 8 437 ± 8
17 30 ± 4 50 ± 1 32 ± 9 294 ± 19
19 31 ± 7 52 ± 1 31 ± 15 299 ± 19
Equations of the fitting curves
  Temperature 0 oC Temperature 15 oC
Pore diameter Dp = 0.71U + 11.67 Dp = 0.89U + 13.79
Intepore distance Dc = 2.21U + 10.83 Dc = 2.25U + 10.29
Table 3: Geometrical features of formed AAO with operating conditions.
Figure 1: Absorption spectra of 0.04 M V2O5 in 2 wt. % H2SO4 and 0.04 M V2O5 with 0.08 citric acid in 2 wt. % H2SO4 (a) and for 2.10-4 M V2O5 with 4.10-4 citric acid in 2 wt. % H2SO4
Figure 2: FE-SEM micrographs (a-c) and PL excitation-emission maps (d-f) of AAO formed in 2 wt. % H2SO4 with addition of 0.04 M V2O5 and 0.08 citric acid at 15 oC at 13 (a, d), 15 (b, e) and 17 V (c, f). The hotter color the greater PL intensity (d-f).
Figure 3: PL spectra of AAO formed in 2 wt. % H2SO4 with addition of 0.04 M V2O5 and 0.08 citric acid. AAO was excited with various radiation wavelengths: 220 (a), 280 (b), 340 (c) and 380 (d).
Figure 4: Schematic presentation of the phenomena occurring during anodic oxide growth, leading to the incorporation of [VO(cit)]-.