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Comparison of HgI2 nanostructures obtained in suspension in ODE and ODE/ODA

机译:在颂歌和颂歌中悬浮中获得的HGI2纳米结构的比较

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Mercuric iodide is a vast studied semiconductor because of its properties as photoconductor. One of its main applications is as material for ionizing radiation detection. Moreover, the inclusion of HgI2 nanostructures in hybrid solar cells can be visualized as a new application. In the present work, mercuric iodide nanostructures were synthesized by the suspension method in 1-octadecene (ODE) from Hg(NO3)2.H2O and I2; and in 1-octadecene/octadecylamine (ODA) from HgO and I2. The obtained products were centrifuged and washed with heptane. X-ray diffraction (XRD) was performed to nanostructures to confirm HgI2 identity. Nanostructures size, morphology and crystallinity were determined by XRD, transmission electron microscopy (TEM) and selected area electron diffraction (SAED). Nanoparticles were also observed by scanning electron microscopy (SEM). Crystalline nanostructures were obtained in ODE; they grow with their planes perpendicular to the [1 1 2] and [2 1 2] directions and have sizes between 40 and 300 nm depending on the synthesis time. HgI2 nanostructures obtained in ODE/ODA showed a different morphology, grow with their planes perpendicular to the [1 0 2] and [1 1 2] directions, planes and have sizes between 10 and 70 nm. Results show that nanostructures morphology and size are influenced by the ODA and this fact can be used to control HgI2 nanostructures properties for several applications including ionizing radiation imaging and hybrid solar cells development.
机译:由于其作为光电导体的性质,Mercuric Iodide是一种巨大的学习半导体。其主要应用之一是电离辐射检测的材料。此外,将HGI2纳米结构包含在混合太阳能电池中可以被视为新的应用。在本作工作中,通过来自Hg(NO 3)2.H2O和I2的1-十八烯酮(ODE)中的悬浮法合成了汞碘化物纳米结构;来自HgO和I2的1-十八烯丙烯/十八烷基胺(ODA)。将所得产物离心并用庚烷洗涤。对纳米结构进行X射线衍射(XRD)以确认HGI2同一性。通过XRD,透射电子显微镜(TEM)和选择的区域电子衍射(SAED)测定纳米结构尺寸,形态和结晶度。还通过扫描电子显微镜(SEM)观察纳米颗粒。在颂歌中获得结晶纳米结构;它们与它们的平面垂直于[112]和[21]方向,并且根据合成时间,在40至300nm之间具有尺寸。在ode / ODA中获得的HGI2纳米结构显示出不同的形态,与它们垂直于[110 2]和[110]方向,平面的平面生长,并且在10至70mm之间具有尺寸。结果表明,纳米结构形态和大小受到官方疾病的影响,这一事实可用于控制HGI2纳米结构的特性,包括电离辐射成像和混合太阳能电池发育。

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