扫描探针纳米光刻技术用于生物识别

J. Martı́nez
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摘要

随着扫描隧道显微镜(STM)和原子力显微镜(AFM)的发明,人类得以进入纳米世界。起初,这些设备仅用于成像样品,但通过对其电子设备进行少量修改,它们可以用于精确和受控的扫描探针操作,从而创建不同类型的纳米光刻图案。这种光刻技术的发展使得纳米级结构的制造成为可能,从而在纳米技术领域取得了惊人的进步。在这本书的章节中,我们提出了最创新和可靠的探针纳米光刻技术。所有这些都是基于化学反应在样品表面纳米尺寸区域的空间限制。通过这种方式,可以制造2D甚至3D纳米结构。探针纳米光刻技术的全部潜力是通过展示一系列应用来证明的,例如高精度分子的控制沉积或纳米晶体管,可以用作生物识别过程的传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanolithography by Scanning Probes for Biorecognition
With the invention of the scanning tunneling microscope (STM) and subsequently with the atomic force microscope (AFM), the human being was able to enter in the nanoscale world. At first, these devices were only used for imaging samples, but with a small modification of its electronics, they can be used for a precise and controlled manipulation of the scanning probe, creating different types of nanolithographed motifs. The development of this type of lithography has allowed the manufacture of nanometric-scale structures that have led spectacular advances in the field of nanotechnology. In this book chapter, we present the most innovative and reliable probe nanolithography techniques. All of them are based on the spatial confinement of a chemical reaction within a nanometric size region of the sample surface. In that way, 2D or even 3D nanostructures can be fabricated. The full potential of probe nanolithography techniques is demonstrated by showing a range of applications such as the controlled deposition of molecules with high precision or nanotransistors that can be used as sensors for biorecognition processes.
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