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Ultrafast solid-liquid intercalation enabled by targeted microwave energy delivery

机译:通过目标微波能量传递使能超快固体液体插入

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In chemical reactions, the breaking and formation of chemical bonds usually need external energy to overcome the activation barriers. Conventional energy delivery transfers energy from heating sources via various media, hence losing efficiency and inducing side reactions. In contrast, microwave (MW) heating is known to be highly energy efficient through dipole interaction with polar media, but how exactly it transmits energy to initiate chemical reactions has been unknown. Here, we report a rigorous determination of energy delivery mechanisms underlying MW-enabled rapid hydrothermal synthesis, by monitoring the structure and temperature of all the involved components as solid-liquid intercalation reaction occurs using in situ synchrotron techniques. We reveal a hitherto unknown direct energy transmission between MW irradiation source and the targeted reactants, leading to greatly reduced energy waste, and so the ultrafast kinetics at low temperature. These findings open up new horizons for designing material synthesis reactions of high efficiency and precision.
机译:在化学反应中,化学键的破碎和形成通常需要外部能量来克服活化屏障。常规能量输送通过各种培养基转移从加热源的能量,因此失去效率和诱导副反应。相反,已知微波(MW)加热通过与极性介质的偶极相互作用是高能量的能量,但它究竟迄今为止它透过能量以引发化学反应已经未知。在这里,我们通过监测所有所涉及的组分的结构和温度,以使用原位同步技术发生的所有所涉及的组分的结构和温度来报告潜水机制的严格测定。我们揭示了MW照射源和靶向反应物之间的迄今为止未知的直接能量传递,导致能量浪费大大降低,因此在低温下超快动力学。这些发现开辟了设计高效率和精度的材料合成反应的新视野。

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