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激光处理纳米硅:用于能源和医疗保健的多功能纳米材料。

Laser-Processed Nanosilicon: A Multifunctional Nanomaterial for Energy and Healthcare.

机构信息

Aix-Marseille Univ , CNRS, LP3, Marseille 13288 , France.

MEPhI, Institute of Engineering Physics for Biomedicine (PhysBio) , 31 Kashirskoe sh. , 115409 Moscow , Russia.

出版信息

ACS Nano. 2019 Sep 24;13(9):9841-9867. doi: 10.1021/acsnano.9b04610. Epub 2019 Sep 13.

Abstract

This review describes promising laser-based approaches to produce silicon nanostructures, including laser ablation of solid Si targets in residual gases and liquids and laser pyrolysis of silane. These methods are different from, and complementary to, widely used porous silicon technology and alternative synthesis routes. One can use these methods to make stable colloidal dispersions of silicon nanoparticles in both organic and aqueous media, which are suitable for a multitude of applications across the important fields of energy and healthcare. Size tailoring allows production of Si quantum dots with efficient photoluminescence that can be tuned across a broad spectral range from the visible to near-IR by varying particle size and surface functionalization. These nanoparticles can also be integrated with other nanomaterials to make multifunctional composites incorporating magnetic and/or plasmonic components. In the energy domain, this review highlights applications to photovoltaics and photodetectors, nanostructured silicon anodes for lithium ion batteries, and hydrogen generation from water. Application to nanobiophotonics and nanomedicine profits from the excellent biocompatibility and biodegradability of nanosilicon. These applications encompass several types of bioimaging and various therapies, including photodynamic therapy, RF thermal therapy, and radiotherapy. The review concludes with a discussion of challenges and opportunities in the applications of laser-processed nanosilicon.

摘要

这篇综述描述了有前途的基于激光的方法来制备硅纳米结构,包括在残余气体和液体中用激光烧蚀固体 Si 靶材以及硅烷的激光热解。这些方法有别于、且互补于广泛应用的多孔硅技术和替代合成途径。人们可以使用这些方法在有机和水介质中制备稳定的硅纳米颗粒胶体分散体,这些分散体适用于跨越能源和医疗保健等重要领域的多种应用。通过改变颗粒尺寸和表面功能化,可以对硅量子点的尺寸进行剪裁,从而获得具有高效光致发光的量子点,其发光光谱可以从可见光到近红外宽波段范围内进行调节。这些纳米颗粒还可以与其他纳米材料集成,制成多功能复合材料,其中包含磁性和/或等离子体成分。在能源领域,本综述重点介绍了在光伏和光电探测器、用于锂离子电池的纳米结构化硅阳极以及水制氢方面的应用。在纳米生物光子学和纳米医学中的应用得益于纳米硅的优异生物相容性和生物降解性。这些应用包括多种类型的生物成像和各种疗法,包括光动力疗法、射频热疗和放射疗法。最后,本文讨论了激光处理纳米硅在应用中面临的挑战和机遇。

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