Mehta Hardeep S, Chen Ying, Sears Jesse A, Walter Eric D, Campos Mathew, Kothandaraman Jotheeswari, Heldebrant David J, Hoyt David W, Mueller Karl T, Washton Nancy M
Pacific Northwest National Laboratory, Richland WA, 99354, USA.
Pacific Northwest National Laboratory, Richland WA, 99354, USA.
Solid State Nucl Magn Reson. 2019 Oct;102:31-35. doi: 10.1016/j.ssnmr.2019.06.003. Epub 2019 Jun 20.
We present a novel nuclear magnetic resonance (NMR) probe design focused on optimizing the temperature gradient across the sample for high temperature magic angle spinning (MAS) experiments using standard rotors. Computational flow dynamics (CFD) simulations were used to assess and optimize the temperature gradient across the sample under MAS conditions. The chemical shift and linewidth of Pb direct polarization in lead nitrate were used to calibrate the sample temperature and temperature gradient, respectively. A temperature gradient of less than 3 °C across the sample was obtained by heating bearing gas flows and adjusting its temperature and flow rate during variable temperature (VT) experiments. A maximum temperature of 350 °C was achieved in this probe using a Varian 5 mm MAS rotor with standard Vespel drive tips and end caps. Time-resolved C and H MAS NMR experiments were performed at 325 °C and 60 bar to monitor an in-situ mixed phase reverse water gas shift reaction, industrial synthesis of CHOH from a mixture of CO and H with a Cu/ZnO/AlO catalyst, demonstrating the first in-situ NMR monitoring of a chemical system at temperatures higher than 250 °C in a pressurized environment. The combination of this high-temperature probe and high-pressure rotors will allow for in-situ NMR studies of a great variety of chemical reactions that are inaccessible to conventional NMR setup.
我们提出了一种新颖的核磁共振(NMR)探头设计,其重点在于优化使用标准转子进行高温魔角旋转(MAS)实验时样品上的温度梯度。采用计算流体动力学(CFD)模拟来评估和优化MAS条件下样品上的温度梯度。分别利用硝酸铅中铅直接极化的化学位移和线宽来校准样品温度和温度梯度。在变温(VT)实验中,通过加热承载气流并调节其温度和流速,在样品上获得了小于3°C的温度梯度。使用带有标准Vespel驱动尖端和端盖的Varian 5 mm MAS转子,该探头实现了350°C的最高温度。在325°C和60 bar下进行了时间分辨的碳和氢MAS NMR实验,以监测原位混合相逆水煤气变换反应,即使用Cu/ZnO/Al₂O₃催化剂由CO和H₂的混合物工业合成CH₃OH,这证明了首次在加压环境中对温度高于250°C的化学体系进行原位NMR监测。这种高温探头和高压转子的组合将允许对传统NMR装置无法实现的多种化学反应进行原位NMR研究。