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Automated microfluidic platform for systematic studies of colloidal perovskite nanocrystals: towards continuous nano-manufacturing

机译:胶体钙钛矿纳米晶体系统研究的自动化微流体平台:朝向连续纳米制造

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Colloidal organic/inorganic metal-halide perovskite nanocrystals have recently emerged as a potential low-cost replacement for the semiconductor materials in commercial photovoltaics and light emitting diodes. However, unlike III-V and IV-VI semiconductor nanocrystals, studies of colloidal perovskite nanocrystals have yet to develop a fundamental and comprehensive understanding of nucleation and growth kinetics. Here, we introduce a modular and automated microfluidic platform for the systematic studies of room-temperature synthesized cesium-lead halide perovskite nanocrystals. With abundant data collection across the entirety of four orders of magnitude reaction time span, we comprehensively characterize nanocrystal growth within a modular microfluidic reactor. The developed high-throughput screening platform features a custom-designed three-port flow cell with translational capability for in situ spectral characterization of the in-flow synthesized perovskite nanocrystals along a tubular microreactor with an adjustable length, ranging from 3 cm to 196 cm. The translational flow cell allows for sampling of twenty unique residence times at a single equilibrated flow rate. The developed technique requires an average total liquid consumption of 20 mu L per spectra and as little as 2 mu L at the time of sampling. It may continuously sample up to 30000 unique spectra per day in both single and multi-phase flow formats. Using the developed plug-and-play microfluidic platform, we study the growth of cesium lead trihalide perovskite nanocrystals through in situ monitoring of their absorption and emission band-gaps at residence times ranging from 100 ms to 17 min. The automated microfluidic platform enables a systematic study of the effect of mixing enhancement on the quality of the synthesized nanocrystals through a direct comparison between single- and multi-phase flow systems at similar reaction time scales. The improved mixing characteristics of the multi-phase flow format results in high-quality perovskite nanocrystals with kinetically tunable emission wavelength, ranging as much as 25 nm at equivalent residence times. Further application of this unique platform would allow rapid parameter optimization in the colloidal synthesis of a wide range of nano-materials (e.g., metal or semiconductor), that is directly transferable to continuous manufacturing in a numbered-up platform with a similar characteristic length scale.
机译:胶体有机/无机金属卤化物钙钛矿纳米晶体最近被出现为商业光伏和发光二极管中的半导体材料的潜在低成本替代品。然而,与III-V和IV-VI半导体纳米晶体不同,胶体钙钛矿纳米晶体的研究尚未产生对成核和生长动力学的基本和全面的理解。在这里,我们介绍了一种模块化和自动微流体平台,用于室温合成铯 - 卤化卤酰钙氨酰纳米晶体的系统研究。通过整个四个数量级反应时间跨度的全部内容具有丰富的数据收集,我们全面地表征了模块化微流体反应器内的纳米晶体生长。开发的高吞吐量筛选平台具有定制设计的三端口流电池,其具有平移能力,用于沿着管状微反应器的流动性合成的钙钛矿纳米晶体的平移能力,其可调节长度,范围为3cm至196cm。平移流动电池允许以单个平衡的流速对二十个独特的停留时间进行采样。开发技术需要每光谱的平均总液体消耗20μL,并且在取样时只有2μL。它可能以单相和多相流量格式每天连续样本最多30000个独特的光谱。使用开发的即插即用的微流体平台,我们研究铯铅三际钙钛矿纳米晶体的生长,通过原位监测其在100ms至17分钟的停留时间。自动微流体平台能够通过在类似反应时间尺度的单相和多相流动系统之间直接比较来系统研究混合增强对合成纳米晶体质量的影响。改进的多相流动格式的混合特性导致具有动力学上可调发射波长的高质量钙钛矿纳米晶体,在等效停留时间范围内的高达25nm。该独特平台的进一步应用将允许快速参数优化在诸如宽范围的纳米材料(例如,金属或半导体)的胶体合成中,直接可转换成在具有相似特征长度的编号平台中连续制造。

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