催化学报  2016, Vol. 37 Issue (1): 123-134   PDF (1105 KB)    
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本文作者相关文章
杜晓强
黄静伟
丰营营
丁勇
Flower-like 3D CuO microsphere acting as photocatalytic water oxidation catalyst
Xiaoqiang Dua, Jingwei Huanga, Yingying Fenga, Yong Dinga,b     
a Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, State Key Laboratory of Applied Organic Chemistry and College of Chemistry Chemical Engineering, Lanzhou University, Lanzhou 730000, Gansu, China;
b State Key Laboratory for Oxo Synthesis and Selective Oxidation, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, Gansu, China
Abstract: Flower-like 3D CuO microspheres were synthesized and used to photo-catalyze water oxidation under visible light. The structure of the CuO microspheres was characterized by scanning electron microscopy, transmission electron microscopy, infrared, powder X-ray diffraction, electron dispersive spectroscopy, Raman and X-ray photoelectron spectroscopy (XPS). This is the first time that a copper oxide was demonstrated as a photocatalytic water oxidation catalyst under near neutral conditions. The catalytic activity of CuO microspheres in borate buffer shows the best performance with O2 yield of 11.5%. No change in the surface properties of CuO before and after the photocatalytic reaction was seen by XPS, which showed good catalyst stability. A photocatalytic water oxidation reaction mechanism catalyzed by the CuO microspheres was proposed.
© 2016, Dalian Institute of Chemical Physics, Chinese Academy of Sciences.
Published by Elsevier B.V. All rights reserved.
Key words: Photocatalysis     Water oxidation     Metal catalyst     CuO microsphere     Stability    
花状的三维CuO微球作为光催化水氧化催化剂
杜晓强a, 黄静伟a, 丰营营a, 丁勇a,b     
a 兰州大学化学化工学院, 甘肃省有色金属重点实验室, 功能有机分子国家重点实验室, 甘肃兰州730000;
b 中国科学院兰州化学物理研究所, 羰基合成与选择氧化国家重点实验室, 甘肃兰州730000
摘要: 由于化石燃料的不可持续性,以及燃烧化石燃料释放的大量CO2产生的温室效应、环境污染等严重的全球性问题,构建洁净的、环境友好的、非化石燃料的可再生新能源体系成为世界各国高度关注的焦点和重大战略部署.在化石燃料日趋减少的情况下,太阳能已成为人类使用能源的重要组成部分,并不断得到发展.从实用性角度出发,利用人工光合作用直接将光能转化为化学能吸引了国内外许多研究小组的兴趣.太阳能裂解水制氢是解决能源危机的最理想途径之一.然而,水的氧化涉及到4电子和4质子的转移过程,是能量爬坡的艰难过程.所以,水的氧化是制约水裂解的一个瓶颈.
寻找高效、稳定、廉价的水氧化催化剂成为水裂解的重中之重.然而,廉价、制备方法简单、效率高、容易回收的水氧化催化剂仍不多.已有文献报道了一些含Co,Fe,Mn和Ni的光催化水氧化催化剂.值的一提的是,Cu作为地球上第八位丰产元素,由于它合适的氧化还原性质和可调控的配位环境,理论上应该是一个高效的水氧化催化剂.然而,Cu很少被用作水氧化催化剂.2012年,Mayer等报道了第一例含铜的均相电催化水氧化催化剂.2013年,Meyer等报道了非常高效和稳定的简单CuII盐电催化水氧化催化剂. 2014年, Lin等报道了一个碱性的水溶液中混合Cu(II)盐和6,6- dihydroxy-2,2- bipyridine(H2L)的高效电催化水氧化催化剂体系.2015年,Sun等在近中性的硼酸缓冲溶液中采用简便的电沉积Cu2+制备了一个高效的铜氧化物电催化水氧化催化剂.然而,基于地球上充足的Cu设计高效、容易制备和稳定的光催化水氧化催化剂,仍是一个巨大的挑战.
本文基于地球丰产元素Cu和O,成功合成了花状的三维CuO微球,并采用扫描电镜、透射电镜、红外光谱、X射线粉末衍射、拉曼光谱、X射线光电子能谱、N2吸附脱附等温线对CuO样品的物相、元素组成、颗粒大小以及比表面积等进行了表征.在可见光下,以[Ru(bpy)3]2+为光敏剂,Na2S2O8为牺牲电子受体,首次报道了CuO微球用作水氧化催化剂.通过一系列控制实验证明CuO确实参与了催化过程.据我们所知,这是第一例铜物种在近中性条件下被证明具有光催化水氧化催化性能.通过对缓冲溶液、pH值和催化剂浓度的优化,在硼酸缓冲溶液(pH=8.5)中产生的O2收率为11.5%,CuO显示了最佳的催化活性.进一步研究表明,CuO表现出卓越的水氧化催化性能和稳定性.催化剂重复使用5次后活性基本保持不变.反应前后的催化剂组成和形貌基本没有发生改变,其表面性质也未发生明显变化.18O标记的重氧水实验证明,氧气中的氧确实是来自于水.实验发现,催化剂活性主要取决于其比表面积.结合已报道的文献,我们初步提出了一个光催化水氧化反应机理相对于钴、镍和钒,铜丰度高,价格更低,具有更好的发展潜力.可见,丰度高、低毒性和合适的氧化还原性质使铜催化剂填补了光催化水分解的一项空白.
关键词: 光催化     水氧化     金属催化剂     氧化铜微球     稳定性    

1. Introduction

Artificial photosynthesis to directly convert light energy into chemical energy currently attracts much interest in both fundamental study and applications [1, 2, 3, 4, 5]. The terminal step in Photosystem II (PSII) and a possible half-reaction for artificial photosynthesis is water oxidation,

which is a challenging reaction [6, 7, 8] that is a significant mechanistic challenge in its requirements for extracting both electrons and protons to reduce protons or other chemicals to produce fuel and O-O bond formation. Much effort has been devoted to identify new catalysts made of cheap and abundant materials for water oxidation, to integrate them into photosynthetic schemes. Water oxidation catalysts that contain common metals such as Co [9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24], Mn [25, 26, 27, 28], Fe [29, 30, 31, 32], Cu [33, 34, 35, 36, 37, 38], V [39], and Ni [40, 41, 42, 43, 44, 45, 46] have been studied under photo- and electrochemical conditions. Among the first row transition metal (TM) elements, Cu is the eighth most abundant element in the Earth’s crust and Cu-based materials have been suggested for water oxidation catalysts (WOCs) for both their well-defined coordination chemistry and useful redox chemistry. However, little success has been achieved in the search for an efficient Cu-based WOCs. No CuO has been reported as a photocatalytic water oxidation catalyst yet.

Copper complexes in the higher oxidation state are well-known catalysts for oxidizing organic compounds such as alcohols, phenols and hydrocarbon. The use of Cu for water oxidation has been much less explored. Recently, Mayer et al. [33] reported the first example of a homogeneous copper electrocatalyst for water oxidation. Meyer et al. [47] reported that simple Cu(II) salts were highly robust and sustainable electrocatalytic water oxidation catalysts. Lin et al. [37] produced a highly active electrocatalytic water oxidation catalyst by simply mixing a Cu(II) salt and 6,6-dihydroxy-2,2-bipyridine (H2L) in a basic aqueous solution. Sun et al. [36] prepared a robust electrocatalytic water oxidation catalyst based on copper oxide by facile electrodeposition of Cu2+ from borate buffer solution under near neutral conditions. However, it is still a continuing challenge to design efficient, easily accessible, and stable catalysts for the photocatalytic water oxidation reaction that is based on the common copper metal.

Here, flower-like three dimensional (3D) CuO microspheres were easily prepared from a Cu(NO3)2·3H2O precursor. We report on the photoinduced water oxidation obtained by using a sacrificial system made of [Ru(bpy)3]2+ (bpy = 2,2′-bipyridine) as a photosensitizer, Na2S2O8 as the sacrificial acceptor, and the flower-like 3D CuO microspheres as the photocatalytic water oxidation catalyst. The catalytic activity of the CuO microspheres in borate buffer showed a best performance of a TOF of 0.21 μmol s-1 m-2. Our data clearly demonstrated that the evolved O originated exclusively from the water. We suggest that the catalytic activity for O2 evolution can be related to the enhanced specific surface area of CuO.

2. Experimental
2.1. Synthesis of CuO microspheres

H218O (97% 18O) was purchased from Mashall Isotope Ltd. Purified water (18.2 MΩ·cm) for the preparation of the solutions was obtained from Molecular Lab Water Purifier, and all other chemicals and salts used were of the highest purity available from commercial sources. All chemicals were of analytical grade and used without further purification. In a typical synthesis, 1 g of block polymer P123 was dissolved in 40 mL distilled water. Cu(NO3)2·3H2O (0.005 mol) was added to the solution and this mixture was stirred until a clear blue solution was formed. Then, ammonia solution (10 mL, 25-28 wt%) was added, which was followed by the formation of a dark blue solution. The resulting dark blue mixture was stirred for 1 h,transferred into a 100 mL three-necked flask, and refluxed at 110 °C for 2 h. Vigorous stirring was maintained throughout the process. After the reaction, the system was cooled naturally to room temperature. Precipitates were collected by centrifugation and washed several times with deionized water and ethanol. The resulting precipitates were dried at 80 °C (yield 0.2 g, 41%).

2.2. Photocatalytic water oxidation

Photocatalytic water oxidation was performed as follows. The desired concentration of catalyst 0.5 g/L was added to a buffer solution (80 mmol/L, pH 8.5 for borate buffer) containing [Ru(bpy)3]Cl2 (1.0 mmol/L) and Na2S2O8 (5.0 mmol/L). The above solution was deaerated by purging with Ar gas for 10 min in a flask (28 mL) sealed with a rubber septum (the volume of the reaction solution was 15 mL). The reaction was then started by irradiating the solution with a LED light source (light intensity 16 mW, beam diameter 2 cm) (Fig. S1) through a transmitting glass filter (λ ≥ 420 nm) at room temperature. After each irradiation time, 150 μL of Ar was injected into the flask and then the same volume of gas in the headspace of the flask was withdrawn by a SGE gas-tight syringe and analysed by gas chromatography (GC). The O2 in the sampled gas was separated by passing through a packed molecular sieve 5A column (2 m × 3 mm) with an Ar carrier gas and quantified by a thermal conductivity detector (TCD, Shimadzu GC-9A). The total amount of evolved O2 was calculated from the concentration of O2 in the headspace gas. Contamination of the head-space with air was corrected by measuring of N2 present in the head-space (from the N2 peak in the GC traces). The solution pH was measured after the reaction by a METTLER TOLEDO FEP20 pH meter.

2.3. Characterization technique

X-ray photoelectron spectra (XPS) were measured by ESCALAB250xi with X-Ray monochromatisation. GC-MS spectral analyses of isotopic labelled O2 were performed on an Agilent Series Model 7890A chromatograph interfaced with an Agilent Series Model 5975C mass spectrometer. X-ray diffraction (XRD) data were collected with a PANalytical X'Pert Pro Diffractometer operated at 40 kV and 40 mA with Cu Kα radiation (step size: 0.017°, step time: 10.34 s). Scanning electron microscopy (SEM) observations were performed on a Hitachi S-4800 microscope operated at an accelerating voltage of 5.0 kV. Transmission electron microscopy (TEM) images were obtained with a JEOL JEM-2010 instrument operated at 200 kV. N2 adsorption at -196 °C was performed with a Micromeritics ASAP 2020M system. A sample mass of about 100 mg was used for the adsorption analysis after pretreatment at 80 °C for 8.0 h under vacuum conditions and kept in N2 atmosphere until the N2 adsorption measurement. The surface area was calculated using Langmuir and Brunauer-Emmett-Teller (BET) method.

2.4. Electrochemistry

Cyclic voltammetry (CV) was recorded on a CHI660D electrochemical analyser. A glassy carbon, an Ag/AgCl and a Pt wire electrodes were used as a working, reference and auxiliary electrodes, respectively. CV was obtained in buffer solutions at room temperature with a scanning rate of 100 mV /s.

2.5. Isotope-labeled experiment

The 10.8 atom % H218O of borate buffer solution (pH 8.5, 80 mmol/L) containing CuO (0.5 g/L), [Ru(bpy)3]Cl2 (1.0 mmol/L), Na2S2O8 (5.0 mmol/L) was deaerated with Helium gas before irradiation by LED light (λ ≥ 420 nm) in a flask that is sealed with a rubber septum. After 9 min, 50 μL of gas sample was withdrawn using a gas-tight syringe for gas analysis. An Agilent Series 7890A model chromatograph interfaced with an Agilent Series 5975C model mass spectrometer operating in electron impact ionization mode was used to collect mass spectrometric data. The MS detector was tuned for maximum sensitivity (quadruple temperature, 150 °C; ion source temperature, 230 °C). The single ion mode was used to scan for the ions m/z = 28, 32, 34, 36 with a dwell time of 100 ms, resulting in 8.3 cycles per second. The ions of m/z range from 30 to 50 were also scanned in order to observe the abundance change of 16O18O and 18O18O, which evolved from H216O and H218O, respectively. The total flow rate into the spectrometer was limited to 0.6 mL/min. The GC equipped with a molecular sieve column (30 m × 0.32 mm × 15 μm), and the vaporizing chamber temperature and column temperature was set for 100 and 35 °C, respectively.

3. Results and discussion
3.1. Characterization of CuO microspheres

CuO microspheres were synthesized by a modified literature method [48]. The morphology of the synthesized CuO microspheres was examined by SEM and TEM. Fig. 1(a) shows typical SEM image of the synthesized CuO microspheres. It showed a quite uniform microsphere structure with an average diameter of about 2.0 µm. In Fig. 1(b), the morphology of the CuO microsphere material is seen to be self-assembled radially comprising many nanoplates with a thickness of about 25 nm. Fig. 1(c) shows a typical TEM image of the CuO spheres. To confirm the formation of CuO, the material was characterized by powder XRD (Fig. 1(d)). All the peaks of the CuO microspheres can be assigned to monoclinic symmetry of CuO (JCPDS 05-0661). The main peaks were located at 2θ = 32.6°, 35.6°, 38.7°, 48.7°, 53.4°, 58.3°, 61.6°, 66.2°, 68.2°,72.4°and 75.1°, which correspond, respectively, to the (110), (−111), (111), (−202), (020), (202), (−113), (−311), (220), (311) and (−222) planes of monoclinic CuO. No impurity peak was observed, indicating the high purity of the prepared samples. The broad XRD peaks also indicated the sample was composed of CuO nanocrystallines. The electron dispersive spectroscopy (EDS, Fig. S2) spectrum further confirmed the existence of Cu and O in the composites. The crystal structure and coordination mode of monoclinic CuO are shown in Fig. 2(a) and (b). The Cu−O distance was 1.95 and 1.96 Å. FT-IR spectrum also confirmed that the prepared CuO samples are a pure phase of CuO with the monoclinic structure (Fig. S3). Raman spectrum also confirmed that CuO samples are a pure phase (Fig. S4). The composition and valence states of the CuO were further investigated by XPS (Fig. S5). XPS (Fig. S5(a)) detected the Cu 2p3/2 peaks at 933.7 eV with two satellite peaks at 941.0 and 943.5 eV and Cu 2p1/2 peaks at 953.7 eV with a satellite peak at 962.5 eV, respectively. These features correspond to a Cu2+ state for the Cu atoms. As shown in Fig. S5(b), the O 1s core level spectrum was broad, and two peaks (marked as I and II) were observed. Peak I at the lower energy of 529.6 eV is in agreement with that for O2- in CuO, while peak II at the higher energy of 531.4 eV was attributed to oxygen adsorbed on the surface of the CuO microspheres. The XPS results further support the conclusion that the sample is pure CuO.

Fig. 1. SEM images (a, b), TEM image (c), and XRD pattern (d) of CuO microspheres.

Fig. 2. Crystal structure of monoclinic CuO (a) and its coordination mode (b).
3.2. Electrochemical properties

The cyclic voltammogram of the CuO microspheres in a pH 5.8 buffer solution showed a catalytic water oxidation peak (the reference current was zero) at 1.82 V vs. RHE (Fig. 3(a)). This potential was much higher than the potential of the oxidized state of [Ru(bpy)3]2+/3+ (E1/2 = 1.67 V vs. RHE). Consequently, light driven water oxidation by CuO microspheres using [Ru(bpy)3]2+ as a photosensitizer was thermodynamically unfavored in a pH 5.8 buffer solution. Water oxidation is favoured under basic conditions. Therefore, the CuO microspheres were potentially useful for water oxidation under near neutral conditions. The electrochemical properties of the CuO microspheres were investigated in pH 8.5 borate buffer solutions (Fig. 3(b)). A catalytic water oxidation curve began from 1.72 V vs. RHE, which were 0.10 V vs. RHE lower than that observed in a pH 5.8 buffer solutions. In contrast, only the minimum current was obtained in the same buffered solution without the CuO microspheres (Fig. 3(b)). Most importantly, the catalytic potential of the CuO microspheres was lower than that of [Ru(bpy)3]2+/3+, which indicated that [Ru(bpy)3]2+/3+ could drive the CuO microspheres to oxidize water.

Fig. 3. (a) CVs of 80 mmol/L sodium Na2SiF6 + NaHCO3 solution at pH 5.8 using 0.5 g/L CuO microspheres and 1.0 mmol/L [Ru(bpy)3]Cl2. (b) CVs of 80 mmol/L sodium borate buffer solution at pH 8.5 with 0.5 g/L of CuO microspheres and 1.0 mmol/L of [Ru(bpy)3]Cl2.
3.3. Catalytic behaviour of the CuO microspheres for photocatalytic water oxidation

Light-driven water oxidation was performed by the photoirradiation (λ ≥ 420 nm) of a borate buffer (80 mmol/L, pH 8.0-9.5, 15 mL) containing the metal oxide catalyst, Na2S2O8 as the sacrificial electron acceptor, and [Ru(bpy)3]Cl2 as the photosensitizer. The catalytic cycle of this visible light-driven water oxidation is depicted in Scheme S1. Isotope-labelled water oxidation experiments using 18O-enriched water (10.8%) instead of H216O were carried out with the CuO microsphere catalyst to confirm that the water was the source of the evolved oxygen. The relative abundance of oxygen isotopes, which were determined from the intensities of their three molecular ion peaks, is listed on Fig. S6. The ratio of 16O16O:16O18O:18O18O was determined to be 81:18:1, which is in good agreement with the simulated ratio of 80:19:1 when the oxygen comes exclusively from the water. The data clearly demonstrated that the evolved O originated exclusively from the water.

3.3.1. Effect of pH

Water oxidation is pH dependent and the catalytic activity of the CuO microspheres was studied under different pH conditions (Fig. 4). The reaction at pH 8.5 showed the highest O2 yield and turnover frequency (TOF). The O2 yield and TOF decreased with increasing pH from 8.5 to 9.5. Although a high pH is thermodynamically favourable for water oxidation, a higher pH can also accelerate the degradation of the photosensitizer, which is a competitive process in the reduction of [Ru(bpy)3]3+ to [Ru(bpy)3]2+ [10, 49, 50]. When pH 9.0 and 9.5 were used, the orange red colour of the fresh reaction solution turned much darker after O2 evolution stopped. The higher pH value promoted the degradation of the photosensitizer by the nucleophilic attack of water or OH- on [Ru(bpy)3]3+ before the photocatalytic water oxidation. This was supported by UV-vis evidence (Figs. S7 and S8). When the pH 8.0 buffer was used, the O2 evolution and TOF also decreased relative to that of the pH 8.5 buffer. The orange red color of the fresh reaction solution turned green (Fig. S9) after 30 s of photoirradiation. The solution colour turned green with reaction time, demonstrating that there was a pile up of [Ru(bpy)3]3+ and Eq. (2) became the rate determining step.

Fig. 4. Kinetics of O2 formation in the photocatalytic system under various pH conditions using CuO microspheres (1) pH 5.8, Na2SiF6+NaHCO3, 20 mmol/L; (2) pH 8.0, 80 mmol/L NaBi; (3) pH 8.5, 80 mmol/L NaBi; (4) pH 9.0, 80 mmol/L NaBi; (5) pH 9.5, 80 mmol/L NaBi. Reaction conditions: LED lamp (λ ≥ 420 nm), catalyst concentration 0.5 g/L, [Ru(bpy)3]Cl2 1.0 mmol/L, Na2S2O8 5.0 mmol/L, total reaction volume 15 mL, overall volume ~28 mL, with vigorous agitation using a magnetic stirrer.

The presence of [Ru(bpy)3]3+ was proved by UV-vis by its characteristic absorbance at 670 nm (Fig. S10). First, the existence of accumulated [Ru(bpy)3]3+ meant that a large amount of the water oxidation oxidant could not be effectually used in the catalytic cycle. Second, at pH 8.0, the pH value of the reaction solution was measured to decrease to 2.7 after the reaction stopped as a result of the release of protons. This demonstrated that the acetic-alkali equilibrium was insufficient for maintaining a thermodynamically favourable pH value for photocatalytic water oxidation. Moreover, when pH 8.0 was used, the time of O2 evolution stopped earlier. It achieved a plateau within 3 min, which demonstrated that it was thermodynamically unfavorable in a pH 2.7 buffer solution. In other words, the light-driven water oxidation by the CuO microspheres using [Ru(bpy)3]2+ as a photosensitizer was thermodynamically more favourable for photocatalytic water oxidation at higher pH values. These results indicated that O2 evolution depended on a combination of several factors, which include low pH, electron acceptor consumption, photosensitizer (Fig. S11) and catalyst deactivation.

3.3.2. Effect of catalyst concentration

The photocatalytic water oxidation was investigated with different concentrations of the CuO microspheres in 28 mL total volume. The catalytic performances are compared in Fig. 5. O2 rapidly formed after 1 min of visible light illumination, and the O2 evolution rate decreased with time (the slope of the curve became level with the lapse of time), and O2 evolution achieved a plateau in 11 min. The reason is that the sacrificial electron acceptor of Na2S2O8 was partially used up and the photosensitizer of [Ru(bpy)3]Cl2 was decomposed during the photocatalytic process, so the amount of O2 formation was limited. A maximum O2 evolution yield (yield was defined as twice the number of moles of O2 per mole of Na2S2O8) of 11.5% and O2 evolution amount of 4.4 μmol were obtained when the concentration of the CuO microspheres was 0.5 g/L. The O2 yield increased with the catalyst concentration up to 1.0 g/L. The yield for O2 evolution increased to 12.0%, and decreased with a lower catalyst concentration of 0.25 g/L. The yield for O2 evolution decreased to 5.7%. Moreover, the TOF decreased from 2.5× 10-4 to 2.1 × 10-4 and 0.9 × 10-4 s-1 per Cu. The amount of O2 increased with catalyst concentration, but it reached saturation at 1.0 g/L.

Fig. 5. Kinetics of O2 formation in the photocatalytic system using different concentrations of CuO microspheres. The other conditions were the same as in Fig. 4 (pH 8.5, 80 mmol/L NaBi).
3.3.3. Effect of different buffers

The visible light-driven water oxidation catalyzed by the CuO microspheres was investigated in different buffers: borate buffer (pH 8.5, 80 mmol/L) and phosphate buffer (pH 8.5, 80 mmol/L, Figs. S12 and S13). The catalytic activity of the CuO microspheres in borate buffer showed the highest catalytic activity with an O2 yield of 11.5%. The O2 evolution yield decreased to 4.8% in the phosphate buffer (H2PO4- and HPO42-). When the phosphate buffer was used, the pH value of the reaction solution changed a lot after the oxygen evolution was completed. The final pH value was decreased to 6.5 with the phosphate buffer, whereas the final pH was decreased to 8.2 for the borate buffer. A lower amount of O2 evolution was observed for the reaction in the phosphate buffers. We think that this can be ascribed to its low acetic-alkali equilibrium because water oxidation is thermodynamically unfavourable under low pH conditions. In addition, phosphate accelerates the decomposition of [Ru(bpy)3]3+ (Fig. S14).

3.3.4. Control experiments

To confirm that the oxygen evolved in the photocatalytic water oxidation reaction was indeed catalyzed by the CuO microspheres, several control experiments (Table S1) were used. (1) Under identical conditions without the photosensitizer, no oxygen was evolved in the presence of light (Fig. S15(2)), confirming that [Ru(bpy)3]2+ is an essential ingredient for water oxidation in the photocatalytic system. (2) Without the CuO microspheres catalyst, little oxygen was generated in the presence of Na2S2O8 and [Ru(bpy)3]Cl2 in a borate buffer (pH 8.5) under photo-irradiation (Fig. S15(3)). The oxygen evolution amount is one-ninth that in the catalytic runs using 0.5 g/L CuO microspheres, indicating that the CuO microspheres were indeed involved in the catalytic oxygen evolution processes. (3) Without the sacrificial electron acceptor, no oxygen was generated in the presence of light (Fig. S15(1)), revealing that Na2S2O8 is an essential ingredient for water oxidation in the photocatalytic system. (4) An irradiation control experiment showed that the catalytic oxygen evolution in the system was driven by light (Fig. S16). All these results clearly demonstrated that the light-driven water oxidation was catalyzed by the CuO microspheres.

3.3.5. Photocatalytic water oxidation with different catalysts

The time course of O2 evolution with different metal oxides is shown in Fig. 6. Table 1 displays the yield of O2 obtained from the metal oxides studied. A minimum amount of O2 evolution was detected in the absence of a catalyst. The yield of O2 evolution obtained after 9 min of photoirradiation with the CuO microspheres (11.5%) was higher than those with Cu(NO3)2.3H2O (10.7%) and commercial CuO (2.1%). The BET surface area (ABET) of the CuO microspheres (15 m2/g) was significantly higher (5 times) than that of the commercial CuO (3 m2/g). Clearly, the CuO microspheres have a superior catalytic activity to that of the commercial CuO under photocatalytic water oxidation. Jiao et al. [22] reported a novel method to synthesize free unsupported ultra-small cobalt oxide nanometres materials by an in situ phase transformation approach with a layered Co(OH)(OCH3) precursor. The cobalt oxide with a particle size less than 2 nm gave a TOF of 0.023 s-1 per cobalt in photocatalytic water oxidation. However, 6 nm Co3O4 nanoparticles gave a lower TOF of 0.002 s-1 per cobalt in photocatalytic water oxidation. X-ray absorption measurements indicated a distinct nanocubane structure, where 13 Co atoms were fully coordinated with O atom by a six-coordinate pattern to form 8 Co4O4 cubanes, which may explain the unusually robust water oxidation catalytic activity. So, a smaller particle size and Co3+ produce better catalytic activity.

Fig. 6. Kinetics of O2 formation in the photocatalytic system using different catalysts. Other conditions were the same as in Fig. 4 (pH 8.5, 80 mmol/L NaBi).

Table 1
Water oxidation catalyzed by different catalysts.

Here, the valence of Cu in the CuO microspheres and commercial CuO was +2 by the XPS analysis. The CuO microspheres (ABET = 15 m2/g) gave a superior catalytic activity (TOF = 2.5×10-4s-1 per Cu) to that of commercial CuO (ABET = 3 m2/g, TOF = 0.4×10-4 s-1 per Cu) for photochemical water oxidation. The results suggested that the photocatalytic activity of CuO depended mainly on the surface area of the catalyst.

3.4. Stability study

A fresh buffer solution containing [Ru(bpy)3]Cl2 (1.0 mmol/L) and Na2S2O8 (5.0 mmol/L) was added to the recovered particles for the repetitive examination under photoirradiation. The high catalytic activity of CuO microspheres was maintained even after the fifth run (Fig. 7). To further check the stability of the CuO catalyst, XRD (Fig. S17), FT-IR (Fig. S18), TEM (Fig. S19) and Raman (Fig. S20) measurements were performed after the photocatalytic water oxidation. Fig. S17 shows the diffraction peaks of the CuO after reaction. The typical CuO diffraction peaks remained and were the same as those before the photocatalytic water oxidation. In addition, FT-IR spectra were used to investigate the surface properties of the CuO. As shown in Fig. S18, there are three peaks observed at ~450, 512 and 592 cm-1, which are the characteristic stretching vibrations of Cu-O bond in monoclinic CuO. None of the peaks showed a change after the photocatalytic water oxidation. No variation in the morphology of the CuO microsphere catalyst was observed (Fig. S19) before and after the reaction. In addition, a catalytic test of the supernatant solution was performed. No O2 was detected after the catalytic tests by the addition of [Ru(bpy)3]Cl2 and Na2S2O8 to the supernatant solution, which excluded Cu2+ leaching as a source of smaller secondary (amorphous) nano-catalysts. However,particle was detected when Cu(NO3)2· 3H2O was used as photocatalytic water oxidation catalyst (Fig. S21). These results clearly indicated that the CuO microspheres a highly active and robust catalyst in the photocatalytic system. Our earlier work [38] revealed that the surface of the catalyst after the photochemical measurements could show micro-phase separation and deactivation of the catalyst. A series of characterization were performed based on this knowledge. We carried out XPS measurements after the reaction to understand this surface phenomenon. XPS was performed to check the valence states and surface properties of the CuO sample after the photocatalytic reaction. Fig. 8(a) and (b) shows the high resolution XPS spectra of Cu 2p and O1s before and after reaction. The binding energy of each element was calibrated by the C 1s peak (284.8 eV). Fig. 8(a) shows the XPS spectra for Cu 2p3/2 peaks at 933.7 eV with two satellite peaks at 941.0 and 943.5 eV and Cu 2p1/2 peaks at 953.7 eV with a satellite peak at 962.5 eV for the CuO microspheres samples before and after the reaction. The binding energies of these peaks indicated the Cu species in the sample was Cu2+ by comparison with the peak positions of the Cu 2p peaks of CuO [51]. Fig. 8(b) exhibits that the XPS spectrum had the O 1s peak at 529.6 eV with another peak at 531.4 eV for the CuO microspheres before the reaction and the peaks were at 529.7 eV with another peak at 531.4 eV after the reaction. Although the main O 1s peak from the sample after the reaction was slightly shifted to higher binding energy, the same separation between the main peak and satellite peak in both samples and the similarity of peak shapes including the satellite peaks in the whole energy region between 528 and 536 eV strongly suggested that there was no change in the valence state of O2-. Therefore, the XRD, FT-IR, and XPS results indicated that the CuO material was a highly robust catalyst in the photocatalytic water oxidation.

Fig. 7. Kinetics of O2 formation in the photocatalytic system using fresh CuO microspheres and recovered CuO microspheres. Other conditions were the same as in Fig. 4 (pH 8.5, 80 mmol/L NaBi).

Fig. 8. XPS of CuO microspheres before and after the reaction in the energy regions of Cu 2p (a) and O 1s (b) of CuO microspheres before and after the reaction.
3.5. Mechanism study

In a recent mechanistic study, water oxidation intermediates were observed using a time-resolved FT-IR technique. Frei and co-workers [52] studied the behaviour of Co3O4 nano-particles in the visible light driven [Ru(bpy)3]2+-S2O82− system and proposed two distinct active sites, namely oxo-bridged Co(III)OH binuclear site and single Co(III)OH sites. The time-resolved FT-IR measurements demonstrated that the presence of adjacent CoOH groups accompanied an oxygen bridge led to an active site with a TOF higher than 3 s−1, while the single cobalt site exhibited a much slower TOF (∼0.02 s−1 per surface atom). CuII has both suitable redox properties and coordination pattern based on the oxidation to CuIII or even CuIV and reduction to Cu0 or CuI [53, 54, 55, 56]. With a propensity for square planar coordination, d8 CuIII is active in reactions of copper compounds containing organic ligands and in bis(m-oxo)-bridged complexes. CuIV complexes stabilized either by fluoride ligands or as linear O=Cu=O are also known. Copper complexes of a high oxidation state have been shown to oxidize phenols [54], alcohols [55] and even hydrocarbons [53]. In our CuO microsphere photocatalytic water oxidation system, a TOF of 2.5 × 10-4(s-1 per Cu) was observed under optimal condition. This can be related to the special property of CuO because it can undergo a change of the oxidation state in the oxygen evolution reaction (OER) that is similar to cobalt oxide [57]. Therefore, we suggest that regardless of the presence of Cu-O-Cu, the dominant reaction pathway for the copper oxide catalyst is the single Cu(II)OH site mechanism.

There are several reasons why a significantly high O2 yield has not been obtained yet. For example, electron injection from an adjacent Cu(II)OH site to the [Ru(bpy)3]2+ sensitizer can be difficult due to the short Cu−O distance (1.95 or 1.96 Å) compared to the [Ru(bpy)3]2+ complex (11 Å). In addition, electron transfer from the Cu(II)OH active site to the [Ru(bpy)3]2+ sensitizer is a random process with no control of the direction, which also reduce the synergism of two adjacent Cu atoms. A precise control of electron transfer has to be optimized to achieve a high O2 yield. Third, the catalytic potential of the CuO microspheres was only 0.13 V lower than that of [Ru(bpy)3]2+, which indicated that [Ru(bpy)3]3+ only weakly drive the CuO microspheres to oxidize water. Further investigation will be carrying out to fully determine the water oxidation reaction mechanism on the surface of CuO microspheres.

4. Conclusions

This is the first report where a copper species was demonstrated to be a photocatalytic water oxidation catalyst under near neutral conditions. The CuO catalyst exhibited excellent water oxidation activity and stability. No change was found by XPS analysis in the surface condition of the CuO microspheres before and after the photocatalytic reaction. Copper is an attractive material because of its abundance and lower price than other elements such as Co, Ni, and Mo. A photocatalytic water oxidation reaction mechanism catalyzed by the CuO microspheres was proposed. Easy preparation, low toxicity, and rich redox properties render the Cu-based photocatalyst favorable for future water splitting applications.

Supporting Information
Table S1
Water oxidation catalyzed without CuO or Ru(bpy)3Cl2 or persulfate or light.

Scheme S1. Spectrum of the LED lamp.

Fig. S1. Spectrum of the LED lamp.

Fig. S2. EDS of the CuO microspheres.

Fig. S3. FT-IR spectrum of the products of the CuO microspheres. There were three infrared peaks observed at ~450, 512 and 592 cm-1, which are the characteristic stretching vibrations of Cu-O bond in monoclinic CuO. The high-frequency mode at ~592 cm-1 may be a Cu-O stretching along the [-101] direction, and the mode ate ~512 cm-1 may be Cu-O stretching along the [101]. These data are same as reported data.

Fig. S4. Raman spectrum of CuO microspheres excited by 514.5 nm laser.

Fig. 14. Fig. S5. XPS spectra of CuO microspheres. (a) Cu 2p; (b) O 1s.

Fig. S6. Observed and theoretical relative abundances of 18O-labeled and unlabeled oxygen evolved during the photocatalytic oxidation of a buffer solution (4.5 mL) prepared with H218O-enriched water (10.8% H218O) containing CuO (0.5 g/L), [Ru(bpy)3]Cl2 (1.0 mmol/L) and Na2S2O8 (5.0 mmol/L) Exp.—observed mass intensity; Cal. —calculated values assuming that evolved O2 results exclusively from water.

Fig. S7. UV-vis spectral changes during the photocatalytic O2 evolution with CuO microspheres. The black line shows the absorption of aqueous borate buffer solutions (pH 8.5, 80 mmol/L) containing [Ru(bpy)3]Cl2 (1.0 mmol/L), Na2S2O8 (5.0 mmol/L) and CuO microspheres (0.5 g/L). The red line shows the absorption of above solution after 9 min of irradiation. The concentration of [Ru(bpy)3]2+ decreased by 6.4%.

Fig. S8. UV-vis spectral changes during the photocatalytic O2 evolution with CuO microspheres. (1) Absorption of aqueous borate buffer solutions (pH 9.0, 80 mmol/L) containing [Ru(bpy)3]Cl2 (1.0 mmol/L), Na2S2O8 (5.0 mmol/L) and CuO microspheres (0.5g/L). (2) Absorption by the above solution after 9 min of irradiation. The concentration of [Ru(bpy)3]2+/sup> decreased by 12.4%.

Fig. S9. (a) Solution containing 1.0 mmol/L of [Ru(bpy)3]2+ and 5.0 mmol/L of Na2S2O8 in pH 8.0, 80 mmol/L NaBi before illumination; (b) Supernatant solution containing 1.0 mmol/L of [Ru(bpy)3]2+ + 5.0 mmol/L of Na2S2O8+0.5 g/L CuO microspheres in pH 8.0, 80 mmol/L NaBi after illumination for 9 min.

Fig. S10. UV-vis spectral changes during the photocatalytic water oxidation with a pH 8.0 buffer. The bottom green line shows the absorption of an aqueous borate buffer solution (pH 8.0, 80 mmol/L) containing [Ru(bpy)3]Cl2 (1.0 mmol/L), Na2S2O8 (5.0 mmol/L) and CuO microspheres (0.5 g/L). Other lines show the UV-vis spectral changes of the green reaction solution obtained by irradiating the initial reaction solution about 30 s.

Fig. S11. Kinetics of O2 formation in the photocatalytic system using different concentrations of [Ru(bpy)3]Cl2. Conditions: LED lamp (λ ≥ 420 nm), 0.5 g/L CuO microspheres, 5.0 mmol/L Na2S2O8, 80 mmol/L sodium borate buffer (initial pH 8.5), total reaction volume 15 mL, overall volume 28 mL, with vigorous agitation using a magnetic stirrer.

Fig. S12. Kinetics of O2 formation in the photocatalytic system use different kinds of buffers. Conditions: LED lamp (λ ≥ 420 nm); catalyst concentration 0.5 g/L, 1.0 mmol/L [Ru(bpy)3]Cl2, 5.0 mmol/L Na2S2O8, 80 mmol/Lsodium borate buffer (initial pH 8.5); total reaction volume 15 mL, overall volume 28 mL, with vigorous agitation using a magnetic stirrer.

Fig. S13. Kinetics of O2 formation in the photocatalytic system use different kinds of buffers. Conditions: LED lamp (λ ≥ 420 nm); catalyst concentration 0.5 g/L, 1.0 mmol/L [Ru(bpy)3]Cl2, 5.0 mmol/L Na2S2O8, total reaction volume 15 mL, overall volume 28 mL, with vigorous agitation using a magnetic stirrer.

Fig. S14. UV-vis spectral changes during the photocatalytic O2 evolution with CuO microspheres. (1) Absorption of aqueous phosphate buffer solutions (pH 8.5, 80 mmol/L) containing [Ru(bpy)3]Cl2 (1.0 mmol/L), Na2S2O8 (5.0 mmol/L) and CuO microspheres (0.5g/L). (2) Absorption by the above solution after 9 min of irradiation. Concentration of [Ru(bpy)3]2+ decreased by 10.2%.

Fig. S15. Kinetics of O2 formation in the photocatalytic system in 80 mmol/L sodium borate buffer (initial pH 8.5), (1)1.0 mmol/L [Ru(bpy)3]Cl2+ 0.5 g/LCuO microspheres; (2)5.0 mmol/L Na2S2O8+0.5 g/L CuO microspheres;(3)1.0 mmol/L [Ru(bpy)3]Cl2+5.0 mmol/L Na2S2O8; (4)1.0 mmol/L [Ru(bpy)3]Cl2+5.0 mmol/L Na2S2O8+0.5 g/LCuO microspheres. Conditions: LED lamp (λ ≥ 420 nm), total reaction volume 15 mL, overall volume 28 mL, with vigorous agitation using a magnetic stirrer.

Fig. S16. Light control experiments of the photochemical water oxidation in 80 mmol/L sodium borate buffer (initial pH 8.5), 1.0 mmol/L [Ru(bpy)3]Cl2 + 5.0 mmol/L Na2S2O8 + 0.5 g/L CuO microspheres.

Fig. S17. XRD patterns of fresh (1) and recovered (2) CuO microspheres.

Fig. S18. FT-IR of fresh (1) and recovered (2) CuO microspheres.

Fig. S19. TEM images of fresh (a) and recovered (b) CuO microspheres.

Fig. S20. Raman spectra of fresh (1) and recovered (2) CuO microspheres excited by 514.5 nm laser.

Fig. S21. Solution containing 1.0 mmol/L of [Ru(bpy)3]2+ + 5.0 mmol/L of Na2S2O8 + 0.5 g/LCu(NO3)2·3H2O in pH 8.5, 80 mmol/L NaBi after illumination for 9 min.
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