Yuki Wadaa,
Toshiki Akiyamaa,
Kazuo Haradaa,
Tetsuo Honmab,
Hiroshi Naka‡
c,
Susumu Saitocd and
Mitsuiro Arisawa*a
aGraduate School of Pharmaceutical Sciences, Osaka University, 1-6 Yamada-oka, Suita, Osaka 565-0871, Japan. E-mail: arisaw@phs.osaka-u.ac.jp
bJapan Synchrotron Radiation Research Institute, 1-1-1 Kouto, Sayo-cho, Sayo-gun, Hyogo 679-5198, Japan
cResearch Center for Materials Science, Nagoya University, Chikusa, Nagoya 464-8602, Japan
dGraduate School of Science, Nagoya University, Chikusa, Nagoya 464-8602, Japan
First published on 23rd June 2021
A novel platinum nanoparticle catalyst closely located near the surface of titanium oxide, PtNP/TiO2, has been prepared. This catalyst has both the properties of a photocatalyst and a metal nanoparticle catalyst, and acquired environmentally friendly catalytic activity, which cannot be achieved by just one of these catalysts, to afford ethers from benzyl alcohols under the wavelength of 420 nm.
Research on photocatalytic reactions using visible light is progressing steadily. Among them, TiO2 has been extensively studied due to its high catalytic activity, low cost, non-toxicity, and long-term stability.4,5
Titanium oxide has a very strong oxidizing power, but it does not have a strong reducing power.6 By using a transition metal such as platinum on titanium oxide as a support, its reducing power can be increased, and the amount of hydrogen generated in the electrolysis of water can be improved eight times compared to the case of titanium oxide alone.7
Furthermore, when MOS contacts the metal, a potential barrier called Schottky barrier is formed at the interface. The basic characteristic of this Schottky barrier lies in the Schottky barrier height (Φ), which represents the difference between the CB of the MOS distorted by the contact with a metal and the Fermi level (EF) of the metal. Although it has been studied for almost half a century, how to determine the barrier is still not well understood. Due to the formation of the Schottky barrier height, the energy required to move the electrons from the valence band of MOS to the conductor changes from Eg to Φ, and the energy becomes smaller and it changes to a longer wavelength. As a result, a photoreaction with titanium oxide using light with a wavelength longer than 387 nm has also been reported (Scheme 1)8
On the other hand, we have recently developed a sulfur-modified Au-supported Pd NP catalyst (SAPd) that is applicable in Suzuki–Miyaura coupling9a,9b and C–H functionalization9c (Scheme 2a). It was constructed by approximately 10 layers of self-assembled Pd(0) NPs (mean size: <5 nm) supported on a sulfur-modified Au surface. We speculated that the self-assembled Pd NPs, which were encapsulated in a sulfated p-xylene polymer matrix,9d were formed using in situ metal NP and nanospace simultaneous organization (PSSO), as illustrated in Scheme 2b: (i) the reduction of a high-valence metal source, (ii) growth of transition metal NPs, (iii) growth of a matrix with appropriately sized nanopores, and (iv) encapsulation of the metal NPs in these nanopores. To prepare SARu,10 SANi,11 SAFe(II),12 and SAFe(0)13 (Scheme 2a), the PSSO method involves the in situ reduction of a noble metal precursor to produce in situ metal NPs.
In this research project, we decided to create a novel metal NP catalyst having metal NPs near the surface of TiO2 by substituting the gold-supported SAPd for gold with a titanium oxide (TiO2) photocatalyst. Alternatively, by substituting the solid gold support for a photocatalyst, we thought that we could create a novel metal NPs catalyst with an unprecedented reactivity by combining the properties of both photocatalyst and metal nanoparticle catalyst (Scheme 2c).
Next, to investigate the state of Pt supported on the surface of PtNPs/TiO2, the Pt-L3 orbital of PtNP/TiO2 and Pt standard samples were measured via the X-ray absorption near edge structure (XANES) analysis. That is, as a result of comparing the spectra of PtNP/TiO2 with those of the standard samples, Pt foil, H2PtCl6·6H2O, PtCl2, Pt(acac)2, and PtO2, Pt on PtNP/TiO2 was closest to the Pt foil, and it was found that the Pt supported on was Pt(0) such as an organometallic catalyst, or Pt(0) formed into a bulk state by a metal bond (Fig. 1, left). It was also found that platinum supported on all PtNPs/TiO2 is Pt(0) regardless of the amount of platinum supported (Fig. 1, right).
Furthermore, we observed PtNPs/TiO2 via transmission electron microscopy (TEM) (Fig. 2). As a result, it was clarified that a polymer layer was present on the surface of titanium oxide similar to SAPd. Similar to SAPd, this polymer layer is considered to form a matrix of p-xylene and SO42− derived as (p-xylene)m·(SO4)n polymer and Pt(0)NPs. This polymer stabilizes Pt(0)NPs at around 3–4 nm and prevents aggregation.
Next, we confirmed the essential elements required for this etherification reaction (Table 2). When TiO2 was examined without the PtNP catalyst, the reaction did not proceed at all (entries 1 and 2). When sulfur-modified titanium oxide was used, the yield was 7% and a slight progress of the reaction could be confirmed, but the result was far below 89% (entry 3). The reaction did not proceed even in entry 4, where the PtNP catalyst and SAPt with Au as the supported solid were used, and the reaction did not substantially proceed even when PdNPs/TiO2 in which PtNPs were replaced with PdNPs were used (entry 5). In addition, the reaction hardly proceeded without the light irradiation (entry 6). In addition, when this reaction was examined in air, more benzaldehyde as a by-product was obtained than in the argon atmosphere, so the reaction was examined in an argon atmosphere. Therefore, it was found that both PtNPs/TiO2 and light are indispensable for this reaction to take place.
Next, the wavelength of the emitted light was examined (Table 3). When we performed the control experiments irradiated at a wavelength of 365 nm, which is higher in energy than the bandgap energy of titanium oxide, the yield of 2a decreased to 22%. Since it was confirmed that the aldehyde compound was produced in a yield of 45% or more under these experimental conditions, it was considered that the alcohol was oxidized by the holes formed in titanium oxide. Furthermore, when we performed the control experiments irradiated with light at 400 nm wavelength, the yield of 2a further decreased to 35%, and when the wavelength was extended to 470 nm, the yield of 2a dropped significantly, the reaction hardly proceeded, and the starting material 1a was recovered. Therefore, light with a wavelength of 420 nm is optimal for this reaction, and we decided to use this light in subsequent experiments.
The generality of this reaction was examined under the optimum conditions obtained above. First, an unsubstituted benzyl alcohol 1b, substrates 1c and 1g–1i with an alkyl group as a substituent, substrates 1d and 1e with a halogen atom, and substrate 1f with a nitro group, which is a strong electron-withdrawing group, were examined. When unsubstituted 1b and 4-tBu derivative 1c were used, corresponding ethers 2b and 2c were obtained (Table 4). It is considered that the yield of 2i was higher than that of 2g and 2h due to the presence of three electron-donating groups. In addition, the reaction hardly proceeded on the substrates 1d and 1e with a halogen atom each, and the reaction did not proceed at all on the substrates 1f that had a nitro group. From these results, it was found that an electron donating group, such as methyl group is imperative for this reaction to proceed with good yield.
Subsequently, the experiment was continued using the 4-OMe derivative 1j. As a result, the corresponding ether 2j was not obtained at all, instead a diphenylmethane compound 3j was obtained (Scheme 4).15
Furthermore, the experiment was continued using a substrate having a substituent at the benzyl position. When 2-phenyl-2-propanol 1k, which is a tertiary alcohol, and 1-phenyl-1-ethanol 1l and 1-p-tolyl-1-ethanol 1m, which are secondary alcohols, were used as substrates and diethyl carbonate was used as a solvent, reaction was resulted in a complex mixture. When nitromethane was used as the solvent, 1,1,3-trimethyl-3-phenylindane 4k, in which the substrate was dimerized, was obtained only in the case of 1k (Scheme 5), but the reaction was resulted in a complex mixture again with secondary alcohols (Scheme 6).
The experimental results obtained so far suggest that the reaction mechanism and products differ depending on the substrate. First, in order to investigate the reaction mechanism, the following reaction was examined using 4-methylbenzyl alcohol 1a and 4-methoxybenzaldehyde 5j. As a result, although the reactivity was lowered, dibenzyl ether derivative 2a was obtained in a yield of 56% same as before, and compound 2l in which the methyl and methoxy forms were coupled was not obtained at all. Therefore, it was clarified that this reaction does not pass through aldehyde 5j as a reaction intermediate (Scheme 7).
Since the existence of TiO2 and PtNPs as well as irradiation with wavelength of 420 nm were essential (Tables 2 and 3), the following reaction mechanism was estimated (Fig. 3). First, the irradiation of light causes electrons to move from titanium oxide to Pt. Alternatively, electrons move from platinum to titanium oxide. In the latter case, it is considered to take place due to the surface plasmon resonance of Pt. Here, it is assumed that electrons have moved from titanium oxide to Pt. 4-Methylbenzyl alcohol 1a, which is a substrate, approaches the surface of titanium oxide, and electrons on Pt, generated by irradiation with light, move onto the benzene ring of the substrate. Then, the hydroxyl group is desorbed, electrons are deprived of the holes formed on titanium oxide, and simultaneously, a benzyl cation intermediate 1a′ is generated, and another 4-methylbenzyl alcohol 1a nucleophilically attacks the benzyl cation intermediate 1a′ to afford ether 2a.
When the substrate is 4-methoxybenzyl alcohol 1j, it is considered that the ipso-position Friedel–Crafts reaction between the benzyl cation intermediate 1j′ and another 4-methoxybenzyl alcohol 1j proceeded to give 3j. In this case, formic acid is considered to be eliminated (Scheme 8).
As shown in Scheme 5, 1,1,3-trimethyl-3-phenylindane 4k was obtained when 1k of tertiary alcohol was used as a substrate. Since α-methylstyrene 6k was considered as an intermediate in the reaction mechanism of this compound, it was confirmed that this reaction proceeds using 6k as a substrate. As a result, 1, 1, 3-trimethyl-3-phenylindane 4k was obtained in 77% yield (Scheme 9), and it was suggested that α-methylstyrene 6k or an equivalent thereof was used as an intermediate.
In summary, we have prepared Pt nanoparticle catalysts closely located on a semiconductor photocatalyst titanium oxide, PtNPs/TiO2, and found its unprecedented catalytic activity on the etherification reaction under the irradiation of 420 nm. All compositions of PtNPs, TiO2 and irradiation of 420 nm are indispensable in this reaction. The as-prepared PtNPs/TiO2 can be handled stably even in air.
Footnotes |
† Electronic supplementary information (ESI) available. See DOI: 10.1039/d1ra00988e |
‡ Current address: Graduate School of Pharmaceutical Sciences, Kyoto University, Sakyo-ku, Kyoto 606-8501, Japan. |
This journal is © The Royal Society of Chemistry 2021 |