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首页> 外文期刊>Open Journal of Physical Chemistry >Effect of Surface Site on the Spin State for the Interaction of NO with Pd2, Rh2 and PdRh Nanoparticles Supported at Regular and Defective MgO(001) Surfaces
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Effect of Surface Site on the Spin State for the Interaction of NO with Pd2, Rh2 and PdRh Nanoparticles Supported at Regular and Defective MgO(001) Surfaces

机译:表面位点对NO与MgO(001)表面有缺陷的Pd2,Rh2和PdRh纳米粒子相互作用的自旋状态的影响

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An attempt has been made to analyze the effect of surface site on the spin state for the interaction of NO with Pd2, Rh2 and PdRh nanoparticles that supported at regular and defective MgO(001) surfaces. The adsorption properties of NO on homonuclear, Pd2, Rh2, and heteronuclear transition metal dimers, PdRh, that deposited on MgO(001) surface have been studied by means of hybrid density functional theory calculations and embedded cluster model. The most stable NO chemisorption geometry is in a bridge position on Pd2 and a top configuration of Rh2 and PdRh with N-down oriented. NO prefers binding to Rh site when both Rh and Pd atoms co-exist in the PdRh. The natural bond orbital analysis (NBO) reveals that the electronic structure of the adsorbed metal represents a qualitative change with respect to that of the free metal. The adsorption properties of NO have been analyzed with reference to the NBO, charge transfer, band gaps, pairwise and non-pairwise additivity. The binding of NO precursor is dominated by the E(i)Mx-NO pairwise additive components and the role of the support was not restricted to supporting the metal. The adsorbed dimers on the MgO surface lose most of the metal-metal interaction due to the relatively strong bond with the substrate. Spin polarized calculations were performed and the results concern the systems in their more stable spin states. Spin quenching occurs for Rh atom, Pd2, Rh2 and PdRh complexes at the terrace and defective surfaces. The adsorption energies of the low spin states of spin quenched complexes are always greater than those of the high spin states. The metal-support and dimer-support interactions stabilize the low spin states of the adsorbed metals with respect to the isolated metals and dimers. Although the interaction of Pd, Rh, Pd2, Rh2 and PdRh particles with Fs sites is much stronger than the regular sites O2-, the adsorption of NO is stronger when the particular dimers are supported on an anionic site than on an Fs site of the MgO(001). The encountered variations in magnetic properties of the adsorbed species at MgO(001) surface are correlated with the energy gaps of the frontier orbitals. The results show that the spin state of adsorbed metal atoms on oxide supports and the role of precursor molecules on the magnetic and binding properties of complexes need to be explicitly taken into account.
机译:尝试分析表面位点对自旋态的影响,以了解NO与Pd2,Rh2和PdRh纳米粒子在规则和有缺陷的MgO(001)表面上支撑的相互作用。利用混合密度泛函理论计算和嵌入式簇模型研究了NO在同核Pd2,Rh2和异核过渡金属二聚体PdRh上的吸附性能。最稳定的NO化学吸附几何形状位于Pd2上的桥键位置,Rh2和PdRh的顶部构型为N-down取向。当Rh和Pd原子同时存在于PdRh中时,NO倾向于结合Rh位点。天然键轨道分析(NBO)表明,吸附金属的电子结构相对于游离金属表现出质的变化。参考NBO,电荷转移,带隙,成对和非成对加和性分析了NO的吸附特性。 NO前体的结合主要由E(i)Mx-NO成对的添加剂组分控制,并且载体的作用不限于负载金属。由于与基材的相对牢固的键合,MgO表面吸附的二聚体失去了大多数金属-金属相互作用。进行了自旋极化计算,结果与系统处于更稳定的自旋状态有关。自旋淬灭发生在平台和缺陷表面处的Rh原子,Pd2,Rh2和PdRh络合物。自旋淬灭的配合物的低自旋态的吸附能总是大于高自旋态的吸附能。金属-载体和二聚物-载体的相互作用相对于分离的金属和二聚物稳定了被吸附金属的低自旋态。尽管Pd,Rh,Pd2,Rh2和PdRh颗粒与Fs位点的相互作用要强于规则位点O2-,但当特定二聚体负载在阴离子位点上时,NO的吸附作用要强于Fs位点。氧化镁(001)。 MgO(001)表面吸附物质的磁性所遇到的变化与边界轨道的能隙相关。结果表明,氧化物载体上吸附的金属原子的自旋态以及前驱物分子对配合物的磁性和结合性能的作用需要明确考虑。

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