Li-Ping Jia,
Jing Dua,
Jian-Sheng Lia,
Lan-Cui Zhang*a,
Xiao-Jing Sang*ab,
He Yanga,
Hong-Juan Cuia and
Zai-Ming Zhu*a
aSchool of Chemistry and Chemical Engineering, Liaoning Normal University, Dalian 116029, China. E-mail: zhanglancui@lnnu.edu.cn; sangxj923@nenu.edu.cn
bCentre of Analytical Test, Liaoning Normal University, Dalian 116029, China
First published on 14th March 2016
A new polyoxometalate (POM) estertin derivative, {C(NH2)3}Na10K7[(W4O16){Sn(CH2)2COO}4(B-α-AsW9O33)2]·25H2O (1), has been synthesized from K14[As2W19O67(H2O)]·nH2O ({As2W19}) and Cl3SnCH2CH2COOCH3, which exhibits an unusual boat-like structural feature: four [Sn(CH2)2COO]2+ groups surround a center W4O16 cluster and link two [AsW9O33]9− subunits. 1 shows efficient oxidation catalytic activity and can be applied for mimicking enzyme catalysis.
Single crystal X-ray diffraction analysis reveals 1 consists of one large polyoxoanion [(W4O16){Sn(CH2)2COO}4(B-α-AsW9O33)2]18−, one [C(NH2)3]+, ten Na+, seven K+, and twenty-five water molecules (Fig. S1† and 1). Crystal data and structure refinement parameters of 1 were listed in Table S1.† Interestingly, the polyoxoanion of 1 displays boat-like structural feature, in which, two B-α-[AsW9O33]9− subunits are connected by four [Sn(CH2)2COO]2+ moieties and a W4O16 cluster (Fig. 1a). As shown in Fig. 1b, four Sn groups and four WO6 units are bridged by eight O atoms. Four Sn atoms have the same hexa-coordinated environments, each Sn atom was fulfilled by the coordination of four O atoms from WO6 fragments, one C atom and one O atom from the carboxyethyl group. The Sn–O bond distances are 2.023(12)–2.207(15) Å, and the Sn–C bond distances are 2.098(17)–2.15(2) Å. The bond lengths of W–O are in the range of 1.677(18)–2.433(13) Å, respectively (see Table S2†). In 1, bond valence sum (BVS) calculations show that all W, Sn, O and As atoms are in the +6, +4, −2 and +3 oxidation states.8 Selected bond lengths and angles were given in Table S2.† The estertin precursor [Sn(CH2)2COOCH3]3+ was found to have also hydrolyzed into the carboxyethyltin [Sn(CH2)2COO]2+ during the reaction process. As described by Boskovic, {As2W19} precursor can afford B-α-{AsW9O33} units and free tungstate {WOx},9 thus in the synthesis of 1, these fragments and organotin groups were re-assembled into a new structure in a aqueous solution and form a 3D supramolecular framework (Fig. S2†).
The structure of 1 was further confirmed by IR spectrum (Fig. S3†) and NMR spectrum (Fig. 2). As shown in Fig. 2a, the chemical shift of 119Sn for the precursor Cl3Sn(CH2)2COOCH3 (CDCl3/(CH3)4Sn) is at δ = −115.51 ppm, while the 119Sn NMR chemical shift of 1 (D2O/(CH3)4Sn) shifts to high field (δ = −595.56 ppm) due to the increased electron density on Sn atom (Fig. 2b), indicating of organotin groups into the skeleton of {As2W19}. From Fig. 2b, we also found that compound 1 exhibits a broadening resonance. In order to explore the reason of broadening, the 119Sn NMR of Cl3Sn(CH2)2COOCH3 in D2O/(CH3)4Sn (Fig. S4†) and compound DODA-1 in CDCl3/(CH3)4Sn (Fig. 2c) were detected. From Fig. 2c, it is found that a sharp signal peak is gained at δ = −507.73 ppm of compound DODA-1 in CDCl3/(CH3)4Sn. Compared with Fig. 2b and c, we argue that the existence of water molecule leads to the change of coordination environment of Sn atom, thereby, a broadening 119Sn NMR resonance was gained of compound 1 in D2O. The purity of the as-synthesized compound was evaluated by XRPD patterns for experimental and simulated results of 1 (Fig. S5†).
Fig. 2 119Sn NMR spectra in different solutions. (a) Cl3SnCH2CH2COOCH3 (CDCl3/(CH3)4Sn). (b) 1 (D2O/(CH3)4Sn). (c) Compound DODA-1 (CDCl3/(CH3)4Sn). |
This carboxyethyltin-POM hybrid shows good thermal stability. From the TG analysis (Fig. S6†) we can see that the introduced (CH2)2COO− group can be stable before 333 °C, and within the temperature range of 800–1000 °C, the weight remains almost the same, inferring the stability of the polyoxoanion skeleton.
The optical property of 1 was investigated through the UV-Vis absorption spectra in an aqueous solution. As shown in Fig. S7,† the absorption behaviors for 1 and {As2W19} reveal the similar features, and the maximum absorbance at ca. 275 nm for 1 should be attributed to the characteristic absorption of POMs, i.e. the oxygen to metal (Obridging → W) charge transfer. Besides, 1 also exhibits a broader band in the near-UV region. The cyclic voltammetry research shows 1 has redox property, and the redox process of 1 is irreversible (Fig. S8†). In order to investigate the oxidation catalytic activity of 1, according to the method reported in the literature (the specific conditions for catalytic oxidation experiments are in ESI†),10 i.e., using the catalytic oxidation of cyclohexanol to cyclohexanone with H2O2 as a model reaction (Scheme S1†), under the giving oxidation catalytic conditions, 89.7%, 65.2% and 7.6% of yields were obtained for 1, {As2W19}, and without catalyst respectively. This result indicates that the title boat-like hybrid exhibits enhanced oxidation catalytic activity compared with both {As2W19} and the reported sandwich-type carboxyethyltin functionalized POMs.10 In addition, catalyst 1 can be reused and its activity did not significantly change after four runs (see Fig. 3).
To further explore the peroxidase-like property of POMs, the mimic enzyme system of OPD/POM/H2O2 was formed by using 1 to replace horseradish peroxidase (Fig. S9†), in which the catalytic oxidation of the peroxidase substrate OPD in the presence of H2O2 was measured. A typical experiment was carried out as follows: 3.0 mg of 1 was added to 1.0 mL buffer solution (pH = 4.0) with 50 μL (50 mmol L−1) OPD as substrate and the concentration of H2O2 was changed. The absorption spectrum of the reaction solution was determined after 2 min using UV-Vis spectroscopy. The catalytic activity of 1 depends on the H2O2 concentration was detected. Fig. S10† shows that a H2O2 concentration as low as 2.3 × 10−4 mol L−1 was detected, a linear range is from 2.3 × 10−4 to 9 × 10−3 mol L−1. For further analysis of the catalytic mechanism, the Michaelis–Menten kinetic model was used to investigate the peroxidase-like activity of 1.11,12 The apparent steady-state kinetic analysis of compound 1 with H2O2 as substrate was shown as Fig. S11a† and the kinetic parameters were calculated using a Lineweaver–Burk plot (Fig. S11b†).11 The kinetics behavior followed the Michaelis–Menten kinetics mechanism, and the Menten constant (Km) of 1 with H2O2 was 19.68 mmol L−1 at pH = 4. This result confirms that compound 1 behaves as a peroxidase mimetic.
As is known, some POM-based compounds can be used as excellent photocatalysts to degrade organic dyes. In this work, the photocatalytic performance of the title compound was investigated through the degradation of RhB solution under visible light (the special photocatalytic experiments are detailed in ESI†).13 Interesting, when 1 dissolved and remained in the solution after once degradation, after five runs of photocatalytic tests, the photoactivity of 1 did not display significant loss when RhB was re-added in the system.14 In addition, when the dosage of the catalyst was reduced, 1 still have good catalytic performance. As shown in Table S3,† with the reduction of the amount of catalyst, the degradation rate of the dye is not obviously weakened, and the catalyst can be recycled. The catalytic efficiency could reach above 95% when the molar ratio of catalyst to RhB is 1:8 (Fig. 4). Besides, the degradation rate of 1 was far higher than that of without 1 (see Fig. S12†), and also higher than that of the parent {As2W19} (Fig. S13†), indicating the functionalization of carboxyethyltin group. Meanwhile, the maximum peak shifted gradually towards shorter wavelengths, which was probably caused by the existence of a number of intermediates.15
Footnote |
† Electronic supplementary information (ESI) available: ORTEP views of compound 1; IR, NMR, XRPD, TG-DTA, absorption spectra, cyclic voltammograms and catalytic results. CCDC 1436349. For ESI and crystallographic data in CIF or other electronic format see DOI: 10.1039/c5ra27781g |
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