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The Impact of Dipolar Layers on the Electronic Properties of Organic/Inorganic Hybrid Interfaces

机译:双极层对有机/无机混合界面电子性质的影响

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摘要

The presence of dipolar layers determines the functionality of most technologically relevant interfaces. The present contribution reviews how periodic dipole assemblies modify the properties of such interfaces through so-called collective electrostatic effects. They impact the ionization energies and electron affinities of thin films, change the work function of metallic and semiconducting substrates, and determine the alignment of electronic states at interfaces. Dipolar layers originate either from the assembly of polar molecules or they arise from interfacial charge rearrangements triggered by the deposition of an adsorbate layer. Such charge rearrangements result from the omnipresent Pauli pushback caused by exchange interaction, from covalent bonds, or from charge transfer following the deposition of particularly electron rich (donors) or electron poor molecules (acceptors). A peculiarity of charge-transfer interfaces is that they enter the realm of Fermi-level pinning, where the sample work function becomes independent of the substrate and is solely determined by the electronic properties of the adsorbate. Beyond changing work functions and injection barriers, the presence of polar layers also modifies various other physical observables, like core-level binding energies or tunneling currents in monolayer junctions. All these aspects suggest that polar layers can also be exploited for electrostatically designing the electronic properties of materials.
机译:Dipolar层的存在决定了大多数技术相关接口的功能。目前的贡献审查周期性偶极子组件如何通过所谓的集体静电效应修改这种接口的属性。它们影响薄膜的电离能量和电子亲和力,改变金属和半导体基板的功函数,并确定电子态在接口处的对准。双极层源自极性分子的组装,或者它们由通过沉积吸附层触发的界面电荷重排而产生。这种电荷重排由由交换相互作用,来自共价键或在沉积的诸如电子富含(供体)或电子较差分子(受体)之后的电荷转移来产生的Omnipresent Pauli回送。电荷转移界面的特殊性是它们进入FERMI级钉扎的领域,其中样品功函数变得独立于基板,并且仅通过吸附物的电子性质确定。除了改变工作功能和注入障碍之外,极性层的存在还改变了各种其他物理可观察,如核心级结合能或单层连接中的隧道电流。所有这些方面表明,也可以利用极性层来静电设计材料的电子性质。

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