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首页> 外文期刊>Angewandte Chemie >Magnetically Induced Continuous CO2 Hydrogenation Using Composite Iron Carbide Nanoparticles of Exceptionally High Heating Power
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Magnetically Induced Continuous CO2 Hydrogenation Using Composite Iron Carbide Nanoparticles of Exceptionally High Heating Power

机译:磁性诱导的连续CO2氢化使用复合铁碳化铁纳米粒子的含量高热功率

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摘要

The use of magnetic nanoparticles to convert electromagnetic energy into heat is known to be a key strategy for numerous biomedical applications but is also an approach of growing interest in the field of catalysis. The heating efficiency of magnetic nanoparticles is limited by the poor magnetic properties of most of them. Here we show that the new generation of iron carbide nanoparticles of controlled size and with over 80% crystalline Fe2.2C leads to exceptional heating properties, which are much better than the heating properties of currently available nanoparticles. Associated to catalytic metals (Ni, Ru), iron carbide nanoparticles submitted to magnetic excitation very efficiently catalyze CO2 hydrogenation in a dedicated continuous-flow reactor. Hence, we demonstrate that the concept of magnetically induced heterogeneous catalysis can be successfully applied to methanation of CO2 and represents an approach of strategic interest in the context of intermittent energy storage and CO2 recovery.
机译:已知使用磁性纳米粒子将电磁能转化为热量,是许多生物医学应用的关键策略,但也是催化领域生长兴趣的方法。磁性纳米颗粒的加热效率受大部分磁性特性的限制。在这里,我们表明,新一代受控尺寸和超过80%结晶Fe2.2C的碳化铁碳化锰纳米粒子导致特殊的加热性能,这远远大得多比目前可用纳米颗粒的加热特性好得多。与催化金属(Ni,Ru)相关,碳化铁纳米粒子,在专用的连续反应器中非常有效地催化CO 2氢化。因此,我们证明磁诱导的非均相催化的概念可以成功地应用于CO 2的甲烷化,并且代表了间歇能量储存和二氧化碳恢复的背景下的战略兴趣的方法。

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