Granitzer P, Rumpf K, Roca A G, Morales M P, Poelt P, Albu M
Nanoscale Res Lett. 2009 Nov 15;5(2):374-8. doi: 10.1007/s11671-009-9491-7.
A semiconductor/metal nanocomposite is composed of a porosified silicon wafer and embedded ferromagnetic nanostructures. The obtained hybrid system possesses the electronic properties of silicon together with the magnetic properties of the incorporated ferromagnetic metal. On the one hand, a transition metal is electrochemically deposited from a metal salt solution into the nanostructured silicon skeleton, on the other hand magnetic particles of a few nanometres in size, fabricated in solution, are incorporated by immersion. The electrochemically deposited nanostructures can be tuned in size, shape and their spatial distribution by the process parameters, and thus specimens with desired ferromagnetic properties can be fabricated. Using magnetite nanoparticles for infiltration into porous silicon is of interest not only because of the magnetic properties of the composite material due to the possible modification of the ferromagnetic/superparamagnetic transition but also because of the biocompatibility of the system caused by the low toxicity of both materials. Thus, it is a promising candidate for biomedical applications as drug delivery or biomedical targeting.
半导体/金属纳米复合材料由多孔硅晶片和嵌入的铁磁纳米结构组成。所获得的混合系统兼具硅的电子特性以及所掺入铁磁金属的磁特性。一方面,过渡金属从金属盐溶液中通过电化学方式沉积到纳米结构的硅骨架中,另一方面,通过浸渍将在溶液中制备的几纳米大小的磁性颗粒掺入其中。通过工艺参数可以调整电化学沉积纳米结构的尺寸、形状及其空间分布,从而制造出具有所需铁磁特性的样品。使用磁铁矿纳米颗粒渗入多孔硅不仅因为复合材料的磁特性(由于铁磁/超顺磁转变可能发生改变),还因为两种材料的低毒性所导致的系统生物相容性。因此,它是药物递送或生物医学靶向等生物医学应用的一个有前景的候选材料。