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Soft- and reactive landing of ions onto surfaces: Concepts and applications

机译:离子在表面上的软和反应性着陆:概念和应用

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Soft-and reactive landing of mass-selected ions is gaining attention as a promisng approach for the precisely-controlled preparation of materials on surfaces that are not amenable to deposition using conventional methods. A broad range of ionization sources and mass filters are available that make ion soft-landing a versatile tool for surface modification using beams of hyperthermal (<100eV) ions. The ability to select the mass-to-charge ratio of the ion, its kinetic energy and charge state, along with precise control of the size, shape, and position of the ion beam on the deposition target distinguishes ion soft landing from other surface modification techniques. Soft- and reactive landing have been used to prepare interfaces for practical applications as well as precisely-defined model surfaces for fundamental investigations in chemistry, physics, and materials science. For instance, soft- and reactive landing have been applied to study the surface chemistry of ions isolated in the gas-phase, prepare arrays of proteins for high-throughput biological screening, produce novel carbon-based and polymer materials, enrich the secondary structure of peptides and the chirality of organic molecules, immobilize electrochemically-active proteins and organometallics on electrodes, create thin films of complex molecules, and immobilize catalytically active organometallics as well as ligated metal clusters. In addition, soft landing has enabled investigation of the size-dependent behavior of bare metal clusters in the critical subnanometer size regime where chemical and physical properties do not scale predictably with size. The morphology, aggregation, and immobilization of larger bare metal nanoparticles, which are directly relevant to the design of catalysts as well as improved memory and electronic devices, have also been studied using ion soft landing. This review article begins in section 1 with a brief introduction to the existing applications of ion soft- and reactive landing. Section 2 provides an overview of the ionization sources and mass filters that have been used to date for soft landing of mass-selected ions. A discussion of the competing processes that occur during ion deposition as well as the types of ions and surfaces that have been investigated follows in section 3. Section 4 discusses the physical phenomena that occur during and after ion soft landing, including retention and reduction of ionic charge along with factors that impact the efficiency of ion deposition. The influence of soft landing on the secondary structure and biological activity of complex ions is addressed in section 5. Lastly, an overview of the structure and mobility as well as the catalytic, optical, magnetic, and redox properties of bare ionic clusters and nanoparticles deposited onto surfaces is presented in section 6. (c) 2015 Wiley Periodicals, Inc. Mass Spec Rev 35:439-479, 2016.
机译:质量选择离子的软性和反应性着陆作为一种有前途的方法而引起了人们的注意,该方法用于使用常规方法在不适合沉积的表面上精确控制材料的制备。可以使用多种电离源和质量过滤器,使离子软着陆成为使用高温(<100eV)离子束进行表面改性的多功能工具。选择离子的质荷比,其动能和电荷状态的能力,以及对沉积靶上离子束的大小,形状和位置的精确控制,将离子软着陆与其他表面修饰区分开来技术。软着陆和反应着陆已被用于准备实际应用的界面,以及用于化学,物理和材料科学的基础研究的精确定义的模型表面。例如,软着陆和反应着陆已用于研究气相中分离出的离子的表面化学,准备用于高通量生物筛选的蛋白质阵列,生产新型的碳基和聚合物材料,丰富了碳纳米管的二级结构。肽和有机分子的手性,将电化学活性的蛋白质和有机金属固定在电极上,形成复杂分子的薄膜,并固定催化活性的有机金属和连接的金属簇。此外,软着陆使人们能够研究在关键的亚纳米尺寸范围内裸金属团簇的尺寸依赖性行为,在该范围内化学和物理性质无法随尺寸而定。还已经使用离子软着陆研究了与催化剂设计以及改进的存储和电子设备直接相关的较大裸金属纳米粒子的形态,聚集和固定化。这篇综述文章从第一部分开始,简要介绍了离子软着陆和反应性着陆的现有应用。第2节概述了迄今为止已用于质量选择离子的软着陆的电离源和质量过滤器。在第3节中,讨论了在离子沉积过程中发生的竞争过程以及已研究的离子和表面的类型。第4节讨论了在离子软着陆期间和之后发生的物理现象,包括离子的保留和还原。电荷以及影响离子沉积效率的因素。第5节介绍了软着陆对复合离子的二级结构和生物活性的影响。最后,概述了裸离子簇和沉积的纳米颗粒的结构和迁移率以及催化,光学,磁性和氧化还原特性在表面上的清洁剂在第6节中进行介绍。(c)2015 Wiley Periodicals,Inc. Mass Spec Rev 35:439-479,2016。

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