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强磁性粒子间磁团聚力的研究 被引量:15
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作者 林潮 孙传尧 徐建民 《矿冶》 EI CAS 2000年第1期25-30,共6页
根据磁化介质表面电流的概念及电磁场理论 ,推导出有 (无 )外加磁场时铁磁性粒子间磁团聚过程的磁团聚力公式 ,该公式经相应形式变换后可得到传统磁选理论中的磁力公式 ,证明了该公式的适用性。所推导的磁团聚力公式形式简单、物理概念... 根据磁化介质表面电流的概念及电磁场理论 ,推导出有 (无 )外加磁场时铁磁性粒子间磁团聚过程的磁团聚力公式 ,该公式经相应形式变换后可得到传统磁选理论中的磁力公式 ,证明了该公式的适用性。所推导的磁团聚力公式形式简单、物理概念清楚 ,能较好地说明不同粒径粒子及任意间距时的磁团聚力特点 ,丰富了磁团聚理论。 展开更多
关键词 磁团聚力公式 磁团聚 强磁性粒子 选矿
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Magnetic control: Switchable ultrahigh magnetic gradients at Fe3O4 nanoparticles to enhance solution-phase mass transport 被引量:1
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作者 Kamonwad Ngamchuea Kristina Tschulik Richard G. Compton 《Nano Research》 SCIE EI CAS CSCD 2015年第10期3293-3306,共14页
Enhancing mass transport to electrodes is desired in almost all types of electrochemical sensing, electrocatalysis, and energy storage or conversion. Here, a method of doing so by means of the magnetic gradient force ... Enhancing mass transport to electrodes is desired in almost all types of electrochemical sensing, electrocatalysis, and energy storage or conversion. Here, a method of doing so by means of the magnetic gradient force generated at magnetic-nanoparticle-modified electrodes is presented. It is shown using Fe3O4-nanoparticle-modified electrodes that the ultrahigh magnetic gradients (〉10^8 T·m^- 1) established at the magnetized Fe3O4 nanoparticles speed up the transport of reactants and products at the electrode surface. Using the Fe(Ⅲ)/ Fe(Ⅱ)-hexacyanoferrate redox couple, it is demonstrated that this mass transport enhancement can conveniently and repeatedly be switched on and off by applying and removing an external magnetic properties of magnetite nanoparticles field, owing to the superparamagnetic Thus, it is shown for the first time that magnetic nanoparticles can be used to control mass transport in electrochemical systems. Importantly, this approach does not require any means of mechanical agitation and is therefore particularly interesting for application in micro- and nanofluidic systems and devices. 展开更多
关键词 superparamagneficmagnetite nanoparficles nanoparticle-modifiedelectrodes magnetic field effects MAGNETOELECTROCHEMISTRY
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