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Alpha alumina synthesis by laser treatment of bi-phasic nanowires

机译:激光处理双相纳米线合成α-氧化铝

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Al/Al_2O_3 bi-phasic nanowires (Al-core/Al2O_3 shell) are prepared by chemical vapor deposition (CVD) using single source precursor (SSP) approach. Such bi-phasic nanostructures were heat-treated using an argon laser operating at visible wavelengths. Al core seems to act as an active binder, which might decrease the inhomogeneous heating and thermal gradients. Nanoindentation method is used to estimate the hardness of the laser treated surfaces. Hardness values and pop-in behaviour in loading-curve indicate a formation of α-Al_2O_3 with very low defect density. It is believed that Al/Al_2O_3 bi-phasic layers exhibit a dynamic change by transforming into alumina after the laser irradiation and this leads to alteration of the optical absorption especially in the visible wavelength region. Following the full transformation to alumina, the surface reflects back the laser light which hinders inhomogeneous and excessive heating. In this context, laser treatment of Al/Al_2O_3 bi-phasic nanowires provides a controlled sintering process which can open up various applications in different fields.
机译:Al / Al_2O_3双相纳米线(Al-core / Al2O_3壳)是使用单源前驱物(SSP)方法通过化学气相沉积(CVD)制备的。使用在可见光波长下操作的氩激光对该双相纳米结构进行热处理。铝芯似乎起着活性粘结剂的作用,它可以减少不均匀的加热和热梯度。纳米压痕法用于估计激光处理表面的硬度。加载曲线中的硬度值和弹跳行为表明形成了具有非常低缺陷密度的α-Al_2O_3。据信,Al / Al_2O_3两相层在激光照射后通过转变成氧化铝而表现出动态变化,这导致光吸收的改变,特别是在可见光波长区域。完全转变为氧化铝后,表面会反射回激光,从而阻碍不均匀和过度加热。在这种情况下,对Al / Al_2O_3双相纳米线的激光处理提供了受控的烧结工艺,该工艺可以在不同领域开拓各种应用。

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