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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Unit Cell Level Thickness Control of Single-Crystalline Zinc Oxide Nanosheets Enabled by Electrical Double-Layer Confinement
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Unit Cell Level Thickness Control of Single-Crystalline Zinc Oxide Nanosheets Enabled by Electrical Double-Layer Confinement

机译:单晶锌氧化物纳米电池单元电池液位厚度控制通过电双层限制使能

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Ionic layer epitaxy (ILE) has recently been developed as an effective strategy to synthesize nanometer thick 2D materials with a nonlayered crystal structure, such as ZnO. The packing density of the amphiphilic monolayer is believed to be a key parameter that controls the nanosheet nucleation and growth. In this work, we systematically investigated the growth behavior of single-crystalline ZnO nanosheets templated at the water air interface by an anionic oleylsulfate monolayer with different packing densities. The thicknesses of ZnO nanosheets were tuned from one unit cell to four unit cells and exhibited good correlation with the width of Zn2+ ion concentration zone (the Stern layer) underneath the ionized surfactant monolayer. Further analysis of the nanosheet sizes and density revealed that the nanosheet growth was dominated by the steric hindrance from the surfactant monolayer at lower surface pressure, while the nucleation density became the dominating factor at higher surface pressure. The ZnO nanosheets exhibited a decreasing work function as the thickness reduced to a few unit cells. This research validated a critical hypothesis that the nanosheet growth is self-limited by the formation of a double layer of ionic precursors. This work will open up a new way toward controlled synthesis of novel 2D nanosheets from nonlayered materials with a thickness down to one unit cell.
机译:最近已经开发了离子层外延(ILE)作为合成纳米厚2D材料的有效策略,其具有非层状晶体结构,例如ZnO。据信两亲子石单层的填充密度是控制纳米片成核和生长的关键参数。在这项工作中,我们系统地研究了通过具有不同包装密度的阴离子油硫酸盐单层在水空气界面处模拟的单晶ZnO纳米片的生长行为。 ZnO纳米片的厚度从一个单元电池调谐到四个单元电池,并与电离表面活性剂单层下面的Zn2 +离子浓度区(船尾层)的宽度表现出良好的相关性。进一步分析纳米片尺寸和密度显示纳米蛋白酶的生长以较低的表面压力从表面活性剂单层的空间障碍支配,而成核密度在高表面压力下成为主导因子。 ZnO Nanosheets表现出随着厚度减少到几个单位细胞的减少工作函数。该研究验证了一种关键假设,即纳米片生长是通过形成双层离子前体的自限制而自限制。这项工作将使从非层形材料控制合成新的2D​​纳米片的新方法,其厚度下降到一个单元电池。

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