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Diversification of Device Platforms by Molecular Layers: Hybrid Sensing Platforms, Monolayer Doping, and Modeling

机译:分子层的器件平台多样化:混合传感平台,单层掺杂和建模

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Inorganic materials such as semiconductors, oxides, and metals are ubiquitous in a wide range of device technologies owing to the outstanding robustness and mature processing technologies available for such materials. However, while the important contribution of inorganic materials to the advancement of device technologies has been well established for decades, organic inorganic hybrid device systems, which merge molecular functionalities with inorganic platforms, represent a newer domain that is rapidly evolving at an increasing pace. Such devices benefit from the great versatility and flexibility of the organic building blocks merged with the robustness of the inorganic platforms. Given the overwhelming wealth of literature covering various approaches for modifying and using inorganic devices, this feature article selectively highlights some of the advances made in the context of the diversification of devices by surface chemistry. Particular attention is given to oxide semiconductor systems and metallic surfaces modified with organic monolayers. The inorganic device components, such as semiconductors, metals, and oxides, are modified by organic monolayers, which may serve as either active, static, or sacrificial components. We portray research directions within the broader field of organic inorganic hybrid device systems that can be viewed as specific examples of the potential of such hybrid device systems given their comprehensive capabilities of design and diversification. Monolayer doping techniques where sacrificial organic monolayers are introduced into semiconducting elements are reviewed as a specific case, together with associated requirements for nanosystems, devices, and sensors for controlling doping levels and doping profiles on the nanometric scale. Another series of examples of the flexibility provided by the marriage of organic functional monolayers and inorganic device components are represented by a new class of biosensors, where the organic laye
机译:无机材料,例如半导体,氧化物和金属是在宽范围内由于未决的鲁棒性器件技术的无处不在的和成熟的加工可用于这样的材料的技术。然而,尽管无机材料到设备技术的发展的重要贡献已经几十年了,有机无机混合设备系统,其合并与无机分子的平台的功能被很好地建立,表示被迅速以增加的速度不断发展的一个较新的域。从很大的通用性和有机结构单元的灵活性这种装置益处合并的无机平台的鲁棒性。给定文献覆盖修改和使用无机器件的各种方法中的压倒性的财富,这专题文章选择性着重说明了设备的通过表面化学多样化的上下文中所取得的进展的。特别要注意的是氧化物半导体的系统,并用有机单层改性的金属表面。无机设备部件,如半导体,金属和氧化物,是由有机单层,其可用于为主动的,静态的或牺牲性构成要素修改。我们描绘的是可被视为由于其综合设计和多样化的功能,例如混合设备系统的潜在的具体例子,无机有机混合设备系统的更广泛的领域内的研究方向。其中牺牲有机单层被引入到半导体元件的单层的掺杂技术与用于纳米系统,装置,以及用于控制掺杂水平和在纳米尺度掺杂分布传感器相关联的要求一起审查作为特定情况下,。另一系列的通过有机官能单层和无机设备组件的婚姻所提供的灵活性的例子是由一类新的生物传感器,其中,所述有机Laye的表示

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