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The First Observation of Memory Effects in the InfraRed (FT-IR) Measurements: Do Successive Measurements Remember Each Other?

机译:红外(FT-IR)测量中的记忆效应的首次观察:连续的测量会彼此记住吗?

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摘要

Over the past couple of decades there have been major advances in the field of nanoscience and nanotechnology. Many applications have sprouted from these fields of research. It is essential, given the scale of the materials, to attain accurate, valid and reproducible measurements. Material properties have shown to be a function of their size and composition. Physiochemical properties of the nanomaterials can significantly alter material behavior compared to bulk counterparts. For example, metal oxide nanoparticles have found broad applications ranging from photo-catalysis to antibacterial agents. In our study, we synthesized CuO nanoparticles using well established sol-gel based methods with varying levels of Ni doping. However, upon analysis of measured infrared data, we discovered the presence of quasi-periodic (QP) processes. Such processes have previously been reported to be tightly associated with measurement memory effects. We were able to detect the desired QP process in these measurements from three highly accurate repetitive experiments performed on each Ni (1–7%) doped CuO sample. In other words, successive measurements performed in a rather short period of time remember each other at least inside a group of neighboring measurements.
机译:在过去的几十年中,纳米科学和纳米技术领域取得了重大进展。这些研究领域产生了许多应用。鉴于材料的规模,至关重要的是要获得准确,有效和可重复的测量结果。材料特性已显示为其尺寸和组成的函数。与块状对应物相比,纳米材料的理化性质可以显着改变材料的行为。例如,金属氧化物纳米颗粒已发现从光催化到抗菌剂的广泛应用。在我们的研究中,我们使用完善的基于溶胶-凝胶的方法以及不同水平的Ni掺杂合成了CuO纳米颗粒。但是,在对测得的红外数据进行分析后,我们发现了准周期(QP)过程的存在。先前已经报道了这样的过程与测量记忆效应紧密相关。我们能够通过对每个掺杂Ni(1%-7%)的CuO样品进行三个高精度重复实验,在这些测量中检测出所需的QP过程。换句话说,在相当短的时间内执行的连续测量至少在一组相邻测量中彼此记住。

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