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首页> 外文期刊>Advanced Materials >Accelerated Development of Colloidal Nanomaterials Enabled by Modular Microfluidic Reactors: Toward Autonomous Robotic Experimentation
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Accelerated Development of Colloidal Nanomaterials Enabled by Modular Microfluidic Reactors: Toward Autonomous Robotic Experimentation

机译:模块化微流体反应堆使能胶体纳米材料的加速开发:对自主机器人实验

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摘要

In recent years, microfluidic technologies have emerged as a powerful approach for the advanced synthesis and rapid optimization of various solution-processed nanomaterials, including semiconductor quantum dots and nanoplatelets, and metal plasmonic and reticular framework nanoparticles. These fluidic systems offer access to previously unattainable measurements and synthesis conditions at unparalleled efficiencies and sampling rates. Despite these advantages, microfluidic systems have yet to be extensively adopted by the colloidal nanomaterial community. To help bridge the gap, this progress report details the basic principles of microfluidic reactor design and performance, as well as the current state of online diagnostics and autonomous robotic experimentation strategies, toward the size, shape, and composition-controlled synthesis of various colloidal nanomaterials. By discussing the application offluidic platforms in recent high-priority colloidal nanomaterial studies and their potential for integration with rapidly emerging artificial intelligence-based decision-making strategies, this report seeks to encourage interdisciplinary collaborations between microfluidic reactor engineers and colloidal nanomaterial chemists. Full convergence of these two research efforts offers significantly expedited and enhanced nanomaterial discovery, optimization, and manufacturing.
机译:近年来,微流体技术已成为一种强大的方法,用于对各种溶液加工的纳米材料的先进合成和快速优化,包括半导体量子点和纳米片,以及金属等离子体和网状框架纳米粒子。这些流体系统以无与伦比的效率和采样率提供了可获得先前无可达到的测量和合成条件。尽管有这些优势,但胶体纳米材料群落尚未广泛采用微流体系统。为了帮助弥补差距,这一进展报告了微流体反应器设计和性能的基本原则,以及在线诊断和自主机器人实验策略的当前状态,朝大小,形状和组成控制的各种胶体纳米材料的合成。通过讨论近期高优先级胶体纳米材料研究的申请过流体平台及其与快速新兴的人工智能决策策略的融合潜力,旨在鼓励微流体反应器工程师和胶体纳米材料化学家之间的跨学科合作。这两项研究的全部收敛性提供了显着加速和增强的纳米材料发现,优化和制造。

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