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首页> 外文期刊>ACS catalysis >Structure Sensitivity in Catalytic Hydrogenation at Platinum Surfaces Measured by Shell-Isolated Nanoparticle Enhanced Raman Spectroscopy (SHINERS)
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Structure Sensitivity in Catalytic Hydrogenation at Platinum Surfaces Measured by Shell-Isolated Nanoparticle Enhanced Raman Spectroscopy (SHINERS)

机译:壳隔离的纳米粒子增强拉曼光谱(SHINERS)测定的铂表面催化加氢中的结构敏感性

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摘要

The in situ combination of electrochemistry and shell-isolated nanoparticle enhanced Raman spectroscopy (SHINERS) has been used for the first time to investigate the surface structure sensitivity of asymmetric catalytic hydrogenation at single-crystal Pt electrodes. The adsorption and hydrogenation behavior of aqueous ethyl pyruvate (EP) at a range of modified and unmodified Pt{hkl} electrodes was measured both by cyclic voltammetry and by recording Raman spectra at hydrogen evolution potentials. Two primary surface intermediates were observed, including the previously reported half hydrogenation state (HHS), formed by addition of a hydrogen atom to the keto carbonyl group, as well as a new species identified as intact chemisorbed EP bound in a mu(2)(C,O) configuration. The relative populations of these two species were sensitive to the Pt surface structure; whereas the mu(2)(C,O) EP adsorbate was dominant at pristine Pt{111} and Pt{100}, the HHS was only observed at these electrodes after the introduction of defects by electrochemical roughening. Intrinsically defective Pt{110} and kinked Pt{321} and Pt{721} surfaces exhibited behavior similar to that of electrochemically roughened basal surfaces, indicating the requirement for low coordination sites for observation of the HHS. Rationalization of the differing behaviors is given on the basis of density functional theory (DFT) calculations, which indicate that the mu(2)(C,O) EP adsorbate is considerably more stable on basal {111} than on {221} stepped surfaces. A mechanism is proposed in which the mu(2)(C,O)-bound species is a precursor to the HHS but the rate of the first hydrogen atom addition is slow, leading to a low steady-state population of the HHS at terrace sites. The implications of this in the context of enantioselective hydrogenation at chirally modified Pt are discussed.
机译:电化学与壳分离的纳米粒子增强拉曼光谱法(SHINERS)的原位结合已被首次用于研究单晶Pt电极上不对称催化加氢的表面结构敏感性。通过循环伏安法和通过记录拉曼光谱在析氢电位下测量丙酮酸乙酯水溶液在一系列修饰和未修饰的Pt {hkl}电极上的吸附和氢化行为。观察到两个主要的表面中间体,包括先前报道的通过在酮羰基上加一个氢原子而形成的半氢化状态(HHS),以及一种被确定为完整化学吸附的EP结合在mu(2)( C,O)配置。这两个物种的相对种群对铂表面结构敏感。而mu(2)(C,O)EP吸附物在原始Pt {111}和Pt {100}处占主导地位,仅在通过电化学粗糙化引入缺陷后在这些电极上观察到HHS。本质上有缺陷的Pt {110}和扭结的Pt {321}和Pt {721}表面表现出与电化学粗糙化的基础表面相似的行为,表明需要低配位位点来观察HHS。在密度泛函理论(DFT)计算的基础上给出了不同行为的合理化建议,该理论表明mu(2)(C,O)EP吸附物在基面{111}上比在{221}台阶面上稳定得多。 。提出了一种机制,其中与mu(2)(C,O)结合的物质是HHS的前体,但首次添加氢原子的速率很慢,导致梯田HHS的稳态种群较低网站。讨论了在手性修饰的Pt上对映选择性氢化的意义。

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