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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >The fabrication and surface functionalization of porous metal frameworks - a review
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The fabrication and surface functionalization of porous metal frameworks - a review

机译:多孔金属框架的制备和表面功能化-综述

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摘要

Porous metal frameworks offer potentially useful applications for the aerospace, automotive and biomedical industries. They can be used as electrodes, actuators, or as selective membrane films. The versatility of the physical features (pore size, pore depth, overall porosity and pore surface coverage) as well as the large range of surface chemistries for both metal oxides and pure noble metals offers scope to functionalise metal nano-partides and networks of nano-porous metal structures. As well as traditional routes to producing metal structures, such as metal sintering or foaming, novel high-throughput techniques have recently been investigated. Nanoparticle self-assembly, metal ion reduction and deposition as well as metal alloy de-alloying were identified as sustainable routes to produce large surface areas of such nano-porous metal frameworks. The main limitations of the current fabrication techniques include the difficulty to process stable and homogeneous arrays of nano-scale pores and the control of their morphology due to the high reactivity of nano-structured metal structures. This paper aims at critically reviewing the various fabrication techniques and surface functionalization routes used to produce advanced functional porous metal frameworks. The limitations and advantages of the different fabrication techniques will be discussed in light of the final material properties and targeted applications.
机译:多孔金属框架为航空航天,汽车和生物医学行业提供潜在有用的应用。它们可用作电极,致动器或选择性膜膜。物理特征(孔尺寸,孔深度,总孔隙率和孔表面覆盖率)的多功能性以及金属氧化物和纯贵金属的广泛表面化学性质为功能化金属纳米粒子和纳米级网络提供了空间多孔金属结构。除了生产金属结构的传统方法(例如金属烧结或发泡)以外,最近还研究了新颖的高通量技术。纳米颗粒的自组装,金属离子的还原和沉积以及金属合金的脱合金被认为是生产此类纳米多孔金属骨架大表面积的可持续途径。当前的制造技术的主要局限性包括由于纳米结构金属结构的高反应性而难以加工稳定且均匀的纳米级孔阵列,并且难以控制其形态。本文旨在严格审查用于生产高级功能多孔金属框架的各种制造技术和表面功能化途径。将根据最终的材料特性和目标应用来讨论不同制造技术的局限性和优势。

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