在 Schlenkputer 中自主执行高活性化学变化

Nicola L. Bell, Florian Boser, Andrius Bubliauskas, Dominic R. Willcox, Victor Sandoval Luna, Leroy Cronin
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摘要

我们设计了一种模块化可编程惰性气氛舒伦克计算机(Schlenk-line computer),用于合成和操作高活性化合物,包括对空气和湿气敏感或易发火的化合物。为此,我们利用 Chemputer 架构建造了一条可编程的舒伦克生产线,用于玻璃器皿的惰化,可达到 1.5 × 10-3 毫巴的真空线压力,并集成了一系列自动化舒伦克玻璃器皿,用于在亚ppm 水平的氧气和水蒸气条件下处理、储存和分离活性化合物。这使得一系列常见的有机金属反应类型实现了自动化,从而合成了四种高活性化合物:[Cp2TiIII(MeCN)2]+、CeIII{N(SiMe3)2}3、B(C6F5)3 和 {DippNacNacMgI}2 对温度、压力、水和氧气的敏感性各不相同。我们演示了自动结晶、过滤和升华,以及使用在线核磁共振或紫外-可见光谱反应取样进行分析。最后,我们还演示了低至 -90 °C 的低温反应能力,以及利用原位温度探头的动态反馈对碱金属试剂进行安全处理和淬火。高活性化合物的自动化合成具有挑战性。现在,我们开发了一个数字自动化平台,用于更安全地在惰性气氛中合成元素周期表中对空气、湿度、压力和温度敏感的化合物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Autonomous execution of highly reactive chemical transformations in the Schlenkputer

Autonomous execution of highly reactive chemical transformations in the Schlenkputer
We design a modular programmable inert-atmosphere Schlenkputer (Schlenk-line computer) for the synthesis and manipulation of highly reactive compounds, including those that are air and moisture sensitive or pyrophoric. Here, to do this, we constructed a programmable Schlenk line using the Chemputer architecture for the inertization of glassware that can achieve a vacuum line pressure of 1.5 × 10−3 mbar, and integrated a range of automated Schlenk glassware for the handling, storage and isolation of reactive compounds at sub-ppm levels of O2 and H2O. This has enabled automation of a range of common organometallic reaction types for the synthesis of four highly reactive compounds: [Cp2TiIII(MeCN)2]+, CeIII{N(SiMe3)2}3, B(C6F5)3 and {DippNacNacMgI}2, which are variously sensitive to temperature, pressure, water and oxygen. Automated crystallization, filtration and sublimation are demonstrated, along with analysis using inline nuclear magnetic resonance or reaction sampling for ultraviolet–visible spectroscopy. Finally, we demonstrate low-temperature reactivity down to −90 °C as well as safe handling and quenching of alkali metal reagents using dynamic feedback from an in situ temperature probe. The automated synthesis of highly reactive compounds is challenging. Now a digital automated platform is developed for safer, inert-atmosphere synthesis of air-, moisture-, pressure- and temperature-sensitive compounds from across the periodic table.
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