首页> 外文期刊>The Journal of Chemical Physics >Theoretical inspection of the spin-crossover [Fe(tzpy)(2)(NCS)(2)] complex on Au(100) surface
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Theoretical inspection of the spin-crossover [Fe(tzpy)(2)(NCS)(2)] complex on Au(100) surface

机译:在Au(100)表面上的旋转交叉[Fe(Tzpy)(2)(2)]复合物的理论检查

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We explore the deposition of the spin-crossover [Fe(tzpy)(2)(NCS)(2)] complex on the Au(100) surface by means of density functional theory (DFT) based calculations. Two different routes have been employed: low-cost finite cluster-based calculations, where both the Fe complex and the surface are maintained fixed while the molecule approaches the surface; and periodic DFT plane-wave calculations, where the surface is represented by a four-layer slab and both the molecule and surface are relaxed. Our results show that the bridge adsorption site is preferred over the on-top and fourfold hollow ones for both spin states, although they are energetically close. The LS molecule is stabilized by the surface, and the HS-LS energy difference is enhanced by about 15%-25% once deposited. The different Fe ligand field for LS and HS molecules manifests on the composition and energy of the low-lying bands. Our simulated STM images indicate that it is possible to distinguish the spin state of the deposited molecules by tuning the bias voltage of the STM tip. Finally, it should be noted that the use of a reduced size cluster to simulate the Au(100) surface proves to be a low-cost and reliable strategy, providing results in good agreement with those resulting from state-of-the-art periodic calculations for this system.
机译:我们通过基于密度泛函理论(DFT)的计算探索了自旋交叉[Fe(tzpy)(2)(NCS)(2)]络合物在Au(100)表面的沉积。采用了两种不同的方法:基于低成本有限团簇的计算,当分子接近表面时,铁络合物和表面保持固定;以及周期性DFT平面波计算,其中表面由四层平板表示,分子和表面都是松弛的。我们的结果表明,对于这两种自旋态,桥吸附位比顶部和四倍空心吸附位更可取,尽管它们在能量上很接近。LS分子由表面稳定,沉积后HS-LS能量差增加约15%-25%。LS和HS分子的不同铁配位场表现在低能带的组成和能量上。我们的模拟STM图像表明,通过调节STM尖端的偏置电压,可以区分沉积分子的自旋状态。最后,应该指出的是,使用缩小的团簇模拟Au(100)表面被证明是一种低成本、可靠的策略,其结果与该系统最先进的定期计算结果非常一致。

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