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A novel dual mode X-band EPR resonator for rapid in situ microwave heating

机译:一种新型双模X波段EPR谐振器,用于快速原位微波加热

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A unique dual mode X-band Continuous Wave (CW) EPR resonator designed for simultaneous EPR measurement and rapid microwave (MW) induced sample heating is described. Chemical reactions subjected to a flow of energy and matter can be perturbed away from the thermodynamic equilibrium by imposing a rapid shock or physical change to the system. Depending on the magnitude of the perturbation, these changes can dictate the subsequent evolution of the entire system, allowing for instance to populate non-equilibrium reactive intermediate states. Temperature jump (T-jump) experiments are a common method to achieve such perturbations. Most T-jump experiments are based on Joule Heating methods or IR lasers. Here we demonstrate the principle of rapid sample heating based on microwaves. The benefits of MW heating include (i) rapid and efficient heating (i.e. using a tuned resonant cavity, >99% efficient power transfer to the sample can be achieved), and (ii) volumetric heating (i.e. the entire sample volume rises in temperature at once, since heat is generated in the sample instead of being transferred to it). Accordingly, the key concept of the design is the use of a cavity resonator allowing EPR detection (at 9.5 GHz) and simultaneous sample heating (at 6.1 GHz). Temperature increments of 50 degrees C within a few seconds are possible. This is evidenced and illustrated here by probing the temperature-induced variation of the rotational dynamics of 16-doxyl stearic acid methyl ester (16-DSE) spin probe grafted on the surface of sodium dodecyl sulphate (SDS) micelles in water, as well as copper (II) acetylacetonate in chloroform. Rapid changes in the rotational dynamics of the paramagnetic centres provide direct evidence for the in situ and simultaneous EPR measurement-heating capabilities of the resonator. Improvements afforded by the use of pulsed MW sources will enable faster heating time scales to be achieved. In the longer term, this current study demonstrates the simple and direct possibilities for using MW heating as a means of performing T-jump experiments. (C) 2019 The Authors. Published by Elsevier Inc.
机译:描述了专为同时EPR测量和快速微波(MW)诱导的样品加热设计的独特双模式X波段连续波(CW)EPR谐振器。通过对系统施加快速冲击或物理变化,能够使能量和物质流动的化学反应可以从热力学平衡扰动。根据扰动的幅度,这些变化可以决定整个系统的随后演变,允许例如填充非平衡的反应性中间状态。温度跳跃(T-jump)实验是实现这种扰动的常见方法。大多数T跳实验基于焦耳加热方法或红外激光器。在这里,我们证明了基于微波的快速采集加热原理。 MW加热的益处包括(i)快速高效的加热(即,使用调谐谐振腔,可以实现与样品的高效功率转移),(ii)体积加热(即整个样品体积在温度下升高立刻,由于在样品中产生热量而不是转移到它)。因此,设计的关键概念是使用缺腔谐振器,允许EPR检测(在9.5GHz)和同时采样加热(在6.1GHz时)。可以在几秒钟内温度增量为50℃。这里通过探测在水中的十二烷基硫酸钠(SDS)胶束表面上的16-二烷基硬脂酸甲酯(16-DSE)旋转探针的旋转动力学的温度诱导的旋转动力学变化来证明和说明。铜(II)氯仿中的乙酰丙酮。顺磁心中心的旋转动力学的快速变化为原位提供了直接证据和同时的谐振器的EPR测量加热能力。通过使用脉冲MW源提供的改进将实现更快的加热时间尺度。在长期内,本前研究表明,使用MW加热的简单和直接可能性作为执行T跳实验的方法。 (c)2019年作者。 elsevier公司发布

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