Faculty for Chemistry and Biochemistry, Ruhr-Universität Bochum, Bochum, Germany.
Max-Planck-Institut für Kohlenforschung, Mülheim an der Ruhr, Germany.
Nat Protoc. 2024 May;19(5):1529-1556. doi: 10.1038/s41596-023-00951-3. Epub 2024 Feb 26.
The instrumental analysis of reaction mixtures is usually the rate-determining step in the optimization of chemical processes. Traditionally, reactions are analyzed by gas chromatography, HPLC or quantitative NMR spectroscopy on high-field spectrometers. However, chromatographic methods require elaborate work-up and calibration protocols, and high-field NMR spectrometers are expensive to purchase and operate. This protocol describes an inexpensive and highly effective analysis method based on low-field benchtop NMR spectroscopy. Its key feature is the use of fluorine-labeled model substrates that, because of the wide chemical shift range and high sensitivity of F, enable separate, quantitative detection of product and by-product signals even on low-field, permanent magnet spectrometers. An external lock/shim device obviates the need for deuterated solvents, permitting the direct, noninvasive measurement of crude reaction mixtures with minimal workup. The low field-strength facilitates a homogeneous excitation over a wide chemical shift range, minimizing systematic integration errors. The addition of the optimal amount of the nonshifting relaxation agent tris(acetylacetonato) iron(III) minimizes relaxation delays at full resolution, reducing the analysis time to 32 s per sample. The correct choice of processing parameters is also crucial. A step-by-step guideline is provided, the influence of all parameters, including adjustments needed when using high-field spectrometers, is discussed and potential pitfalls are highlighted. The wide applicability of the analytical protocol for reaction optimization is illustrated by three examples: a Buchwald-Hartwig amination, a Suzuki coupling and a C-H arylation reaction.
反应混合物的仪器分析通常是化学过程优化的速率决定步骤。传统上,通过气相色谱、高效液相色谱或高场核磁共振波谱仪对反应进行分析。然而,色谱方法需要繁琐的后处理和校准方案,并且高场 NMR 光谱仪的购买和运行成本都很高。本方案描述了一种基于低场台式 NMR 光谱的廉价且高效的分析方法。其关键特点是使用氟标记的模型底物,由于 F 的化学位移范围宽且灵敏度高,即使在低场、永磁体光谱仪上,也能分别对产物和副产物信号进行定量检测。外部锁/匀场装置无需氘代溶剂,允许直接、非侵入性地测量粗反应混合物,只需进行最小的后处理。低场强度有利于在宽化学位移范围内实现均匀激发,最大限度地减少系统积分误差。添加最佳量的无位移弛豫剂三(乙酰丙酮)铁(III)可最大限度地减少全分辨率下的弛豫延迟,将分析时间缩短至每个样品 32 秒。正确选择处理参数也至关重要。本方案提供了一个逐步指南,讨论了所有参数的影响,包括使用高场光谱仪时需要进行的调整,并强调了潜在的陷阱。通过三个实例说明了反应优化分析方案的广泛适用性:Buchwald-Hartwig 胺化反应、Suzuki 偶联反应和 C-H 芳基化反应。