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Insights into the synthesis of layered double hydroxide (LDH) nanoparticles: Part 1. Optimization and controlled synthesis of chloride-intercalated LDH

机译:层状双氢氧化物(LDH)纳米颗粒合成的见解:第1部分。氯化物嵌入的LDH的优化和可控合成

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摘要

Layered double hydroxide (LDH) nanoparticles have excellent anion-intercalating property, and their potential as theranostic nanovectors is high. However, understanding of the control of the mean particle size (MPS) and achievement of monodispersed particle size distribution (PSD) remains elusive. Herein, with the aid of statistical design of experiments on a model system of C1(-)-intercalated (Zn, Al)-LDH, controlled synthesis of single crystalline nanoparticles using the coprecipitation method followed by hydrothermal treatment (HT) was achieved in three steps. First, a 2(4-1) design enabled the identification of influential parameters for MPS (i.e., salt concentration, molar ratio of carbonate to aluminum, solution addition rate, and interaction between salt concentration and stirring rate) and PSD (i.e., salt concentration and stirring rate), as well as the optimum coprecipitation conditions that result in a monodispersed PSD (i.e., low salt concentration and high stirring rate). Second, a preliminary explanation of the HT was suggested and the optimum HT conditions for obtaining ideal Gaussian PSD with chi-squared (chi(2)) < 3 were found to be 85 degrees C for 5 h. Third, using a central composite design, a quantitative MPS model, expressed in terms of the significant factors, was developed and experimentally verified to synthesize nearly monodispersed LDH nanoparticles with MPS similar to 200-500 nm. (C) 2015 Elsevier Inc. All rights reserved.
机译:层状双氢氧化物(LDH)纳米粒子具有出色的阴离子插入性能,并且其作为治疗性纳米载体的潜力很高。但是,对平均粒度(MPS)控制和实现单分散粒度分布(PSD)的了解仍然难以捉摸。在此,借助于对C1(-)嵌入(Zn,Al)-LDH的模型系统进行的实验统计设计,在三个步骤中实现了使用共沉淀法随后进行水热处理(HT)的可控合成单晶纳米颗粒脚步。首先,通过2(4-1)设计可以识别MPS(即盐浓度,碳酸盐与铝的摩尔比,溶液添加速率以及盐浓度与搅拌速率之间的相互作用)和PSD(即盐)的影响参数浓度和搅拌速率),以及导致PSD单分散的最佳共沉淀条件(即低盐浓度和高搅拌速率)。其次,建议对HT进行初步解释,并发现获得最佳的高斯PSD(卡方(chi(2))<3)的最佳HT条件为85摄氏度,持续5 h。第三,使用中央复合设计,开发了以重要因素表示的定量MPS模型,并进行了实验验证,可以合成具有200-500 nm的MPS的几乎单分散的LDH纳米颗粒。 (C)2015 Elsevier Inc.保留所有权利。

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