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首页> 外文期刊>ACS catalysis >Pd-Au-Y as Efficient Catalyst for C-C Coupling Reactions, Benzylic C-H Bond Activation, and Oxidation of Ethanol for Synthesis of Cinnamaldehydes
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Pd-Au-Y as Efficient Catalyst for C-C Coupling Reactions, Benzylic C-H Bond Activation, and Oxidation of Ethanol for Synthesis of Cinnamaldehydes

机译:Pd-Au-Y作为C-C偶联反应的有效催化剂,苄基C-H键活化和乙醇氧化用于合成肉桂醛

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Pd-Au nanoalloy supported on zeolite-Y (Pd-Au-Y) matrix was found to be an effective catalyst for C-Cl bond activation and oxidative coupling of 2-naphthol, leading to the formation of various biaryl products and 1,1'-bi-2-naphthol, BINOL. The same catalyst was also highly efficient for selective oxidation of benzylic alcohols to benzaldehydes. Cinnamaldehydes were obtained directly from benzaldehydes by aldol condensation with acetaldehyde generated in situ by partial oxidation of ethanol in the presence of Pd-Au-Y catalyst at 120 degrees C under basic condition. The biaryl products were also obtained directly from benzylic alcohols in a one-pot system by reacting with phenylboronic acid. The formation of biaryls from benzylic alcohols was believed to occur via one-pot benzylic C-H and C-Cl bond activation. A high % yield of biaryls, BINOL, aldehydes, and cinnamaldehydes was obtained by performing different reactions using the single Pd-Au-Y catalyst. The strong interaction of chloro-benzylic alcohol was predominantly located at active gold species. X-ray photoelectron and diffuse reflectance spectroscopic studies revealed the strong interaction between Pd and Au particles. Electrochemical studies provided proper evidence for the individual role of the nanoparticles (NPs) in one-pot synthesis of biaryls from benzylic alcohols.
机译:发现在沸石-Y(PD-AU-Y)基质上负载的PD-Au纳合金是2-萘酚的C-Cl键活化和氧化偶联的有效催化剂,导致各种前列腺产品和1,1的形成'-bi-2-naphthol,binol。对于对苯甲醛的选择性氧化来说,相同的催化剂也高效。通过在碱性条件下在120℃下通过乙醇部分氧化在原位原位产生的乙醛,在乙醇中直接从苯甲醛中获得脑醛。通过与苯基硼酸反应反应,还通过与苯基硼酸反应直接从一壶系统中直接从苄醇中获得。认为来自苄基醇的芳烃的形成通过单盆苄基C-H和C-Cl键活化发生。通过使用单个Pd-Au-Y催化剂进行不同的反应,获得了高%屈服的芳基,甲醇,醛和肉桂醛。氯苄基醇的强相互作用主要位于活性金物质上。 X射线光电子和漫反射光谱研究显示Pd和Au颗粒之间的强相互作用。电化学研究提供了适当的证据证明纳米颗粒(NPS)在苄醇的单罐合成丙酰醇的单个作用。

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