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聚焦电子束诱导沉积:一个视角。

Focused electron beam induced deposition: A perspective.

机构信息

Physikalisches Institut, Max-von-Laue-Str. 1, Goethe-Universität, 60438 Frankfurt am Main, Germany.

出版信息

Beilstein J Nanotechnol. 2012;3:597-619. doi: 10.3762/bjnano.3.70. Epub 2012 Aug 29.

Abstract

BACKGROUND

Focused electron beam induced deposition (FEBID) is a direct-writing technique with nanometer resolution, which has received strongly increasing attention within the last decade. In FEBID a precursor previously adsorbed on a substrate surface is dissociated in the focus of an electron beam. After 20 years of continuous development FEBID has reached a stage at which this technique is now particularly attractive for several areas in both, basic and applied research. The present topical review addresses selected examples that highlight this development in the areas of charge-transport regimes in nanogranular metals close to an insulator-to-metal transition, the use of these materials for strain- and magnetic-field sensing, and the prospect of extending FEBID to multicomponent systems, such as binary alloys and intermetallic compounds with cooperative ground states.

RESULTS

After a brief introduction to the technique, recent work concerning FEBID of Pt-Si alloys and (hard-magnetic) Co-Pt intermetallic compounds on the nanometer scale is reviewed. The growth process in the presence of two precursors, whose flux is independently controlled, is analyzed within a continuum model of FEBID that employs rate equations. Predictions are made for the tunability of the composition of the Co-Pt system by simply changing the dwell time of the electron beam during the writing process. The charge-transport regimes of nanogranular metals are reviewed next with a focus on recent theoretical advancements in the field. As a case study the transport properties of Pt-C nanogranular FEBID structures are discussed. It is shown that by means of a post-growth electron-irradiation treatment the electronic intergrain-coupling strength can be continuously tuned over a wide range. This provides unique access to the transport properties of this material close to the insulator-to-metal transition. In the last part of the review, recent developments in mechanical strain-sensing and the detection of small, inhomogeneous magnetic fields by employing nanogranular FEBID structures are highlighted.

CONCLUSION

FEBID has now reached a state of maturity that allows a shift of the focus towards the development of new application fields, be it in basic research or applied. This is shown for selected examples in the present review. At the same time, when seen from a broader perspective, FEBID still has to live up to the original idea of providing a tool for electron-controlled chemistry on the nanometer scale. This has to be understood in the sense that, by providing a suitable environment during the FEBID process, the outcome of the electron-induced reactions can be steered in a controlled way towards yielding the desired composition of the products. The development of a FEBID-specialized surface chemistry is mostly still in its infancy. Next to application development, it is this aspect that will likely be a guiding light for the future development of the field of focused electron beam induced deposition.

摘要

背景

聚焦电子束诱导沉积(FEBID)是一种具有纳米分辨率的直接写入技术,在过去十年中受到了越来越多的关注。在 FEBID 中,先前吸附在基底表面上的前体在电子束的焦点中解离。经过 20 年的持续发展,FEBID 已经达到了一个阶段,即该技术现在特别吸引基础研究和应用研究的几个领域。本专题评论介绍了一些突出显示这方面发展的例子,这些例子涉及接近绝缘-金属转变的纳米颗粒金属中的电荷输运模式、这些材料在应变和磁场传感中的应用,以及将 FEBID 扩展到多组分系统(如二元合金和具有协同基态的金属间化合物)的前景。

结果

在简要介绍该技术之后,回顾了最近关于纳米尺度上 Pt-Si 合金和(硬磁)Co-Pt 金属间化合物的 FEBID 工作。在采用速率方程的 FEBID 连续模型中分析了存在两种前体的生长过程,其通量可以独立控制。通过在写入过程中简单地改变电子束的停留时间,可以对 Co-Pt 系统的组成进行可调节性预测。接下来,我们回顾了纳米颗粒金属的电荷输运模式,重点介绍了该领域的最新理论进展。作为一个案例研究,讨论了 Pt-C 纳米颗粒 FEBID 结构的传输特性。结果表明,通过生长后的电子辐照处理,可以在很宽的范围内连续调节颗粒间的电子耦合强度。这为接近绝缘-金属转变的这种材料的传输特性提供了独特的途径。在综述的最后一部分,强调了利用纳米颗粒 FEBID 结构进行机械应变传感和检测小不均匀磁场的最新进展。

结论

FEBID 现在已经达到了成熟的状态,允许将重点转移到开发新的应用领域,无论是在基础研究还是应用研究中。本综述中的一些示例展示了这一点。同时,从更广泛的角度来看,FEBID 仍然需要满足提供纳米尺度上电子控制化学工具的原始想法。这必须理解为,通过在 FEBID 过程中提供合适的环境,可以以受控的方式引导电子诱导反应的结果,从而获得所需产物的组成。FEBID 专用表面化学的发展仍处于起步阶段。除了应用开发之外,这一方面可能是聚焦电子束诱导沉积领域未来发展的指导方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84cd/3458607/566e6b5bc41a/Beilstein_J_Nanotechnol-03-597-g002.jpg

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