首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Adsorption Device Based on a Langatate Crystal Microbalance for High Temperature High Pressure Gas Adsorption in Zeolite H-ZSM-5
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Adsorption Device Based on a Langatate Crystal Microbalance for High Temperature High Pressure Gas Adsorption in Zeolite H-ZSM-5

机译:基于Langate晶体微天平的H-ZSM-5沸石高温高压气体吸附装置

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摘要

We present a high-temperature and high-pressure gas adsorption measurement device based on a high-frequency oscillating microbalance (5 MHz langatate crystal microbalance, LCM) and its use for gas adsorption measurements in zeolite H-ZSM-5. Prior to the adsorption measurements, zeolite H-ZSM-5 crystals were synthesized on the gold electrode in the center of the LCM, without covering the connection points of the gold electrodes to the oscillator, by the steam-assisted crystallization (SAC) method, so that the zeolite crystals remain attached to the oscillating microbalance while keeping good electroconductivity of the LCM during the adsorption measurements. Compared to a conventional quartz crystal microbalance (QCM) which is limited to temperatures below 80 °C, the LCM can realize the adsorption measurements in principle at temperatures as high as 200-300 °C (i.e., at or close to the reaction temperature of the target application of one-stage DME synthesis from the synthesis gas), owing to the absence of crystalline-phase transitions up to its melting point (1,470 °C). The system was applied to investigate the adsorption of CO2, H2O, methanol and dimethyl ether (DME), each in the gas phase, on zeolite H-ZSM-5 in the temperature and pressure range of 50-150 °C and 0-18 bar, respectively. The results showed that the adsorption isotherms of these gases in H-ZSM-5 can be well fitted by Langmuir-type adsorption isotherms. Furthermore, the determined adsorption parameters, i.e., adsorption capacities, adsorption enthalpies, and adsorption entropies, compare well to literature data. In this work, the results for CO2 are shown as an example.
机译:我们提出了一种基于高频振荡微量天平(5 MHz硅酸盐晶体微量天平,LCM)的高温高压气体吸附测量设备,并将其用于沸石H-ZSM-5中的气体吸附测量。在进行吸附测量之前,通过蒸汽辅助结晶(SAC)方法在LCM中心的金电极上合成了H-ZSM-5沸石晶体,而没有覆盖金电极与振荡器的连接点,因此,在吸附测量过程中,沸石晶体保持附着在振荡的微量天平上,同时保持LCM的良好电导率。与限于温度低于80°C的常规石英晶体微量天平(QCM)相比,LCM原则上可以在高达200-300°C的温度下(即,在接近或等于200°C的反应温度下)实现吸附测量。 (从合成气中进行一阶段DME合成的目标应用),因为没有结晶相变,直至其熔点(1,470°C)。该系统用于研究H-ZSM-5沸石在50-150°C和0-18的温度和压力范围内在气相中分别吸附CO2,H2O,甲醇和二甲醚(DME)的能力。吧。结果表明,通过Langmuir型吸附等温线可以很好地拟合H-ZSM-5中这些气体的吸附等温线。此外,确定的吸附参数,即吸附容量,吸附焓和吸附熵,与文献数据进行了很好的比较。在这项工作中,以二氧化碳的结果为例。

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