掺杂铁 (II,III) 氧化物纳米粒子的过饱和氯化钾水溶液的微流体激光诱导成核。

IF 3.4 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Crystal Growth & Design Pub Date : 2024-09-28 eCollection Date: 2024-10-16 DOI:10.1021/acs.cgd.4c00885
Kelechi F Ndukwe-Ajala, Jasmin M Sabirin, Bruce A Garetz, Ryan L Hartman
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引用次数: 0

摘要

为非光化学激光诱导成核(NPLIN)研究而设计的基于毛细管的微流控系统与实时显微镜相结合,用于研究掺杂铁(II,III)氧化物的 KCl 水溶液的 NPLIN。通过热电冷却降低溶液温度来实现过饱和,并通过加热使晶体溶解到下游以防止流动过程中的堵塞。我们研究了纳米粒子浓度、过饱和度、激光强度和过滤的影响。我们报告了在氯化钾过饱和度为 1.06 至 1.08 的条件下,使用低至 1 MW/cm2 的激光强度进行激光诱导成核,纳米粒子的数量密度为每毫升溶液 ∼109 个粒子。晶体数量随着激光强度、过饱和度和纳米粒子浓度的增加而增加。我们就胶体杂质加热机制假说讨论了我们的结果,并提出了一个基于纳米粒子因吸收激光能量而加热和形成气泡的半经验模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidic Laser-Induced Nucleation of Iron (II,III) Oxide Nanoparticle-Doped Supersaturated Aqueous KCl Solutions.

A capillary-based microfluidic system designed for nonphotochemical laser-induced nucleation (NPLIN) studies coupled with real-time microscopy was used to study NPLIN of iron (II,III) oxide doped aqueous KCl solutions. Supersaturation was achieved by lowering the solution temperature using thermoelectric cooling, and heating was used for the dissolution of crystals downstream to prevent clogging during the flow. The effect of nanoparticle concentration, supersaturation, laser intensity, and filtration was studied. We report laser-induced nucleation using laser intensities as low as 1 MW/cm2 with nanoparticle number densities of ∼109 particles per mL of solution at KCl supersaturations from 1.06 to 1.08. The number of crystals increased with increasing laser intensity, supersaturation, and nanoparticle concentration. We discuss our results with respect to the colloidal impurity-heating mechanism hypothesis and propose a semiempirical model based on the nanoparticle heating and bubble formation due to the absorption of laser energy.

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来源期刊
Crystal Growth & Design
Crystal Growth & Design 化学-材料科学:综合
CiteScore
6.30
自引率
10.50%
发文量
650
审稿时长
1.9 months
期刊介绍: The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials. Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.
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