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Charge-controlled magnetism in colloidal doped semiconductor nanocrystals

机译:胶体掺杂半导体纳米晶体中的电荷控制磁性

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摘要

Electrical control over the magnetic states of doped semiconductor nanostructures could enable new spin-based information processing technologies. To this end, extensive research has recently been devoted to examination of carrier-mediated magnetic ordering effects in substrate-supported quantum dots at cryogenic temperatures, with carriers introduced transiently by photon absorption. The relatively weak interactions found between dopants and charge carriers have suggested that gated magnetism in quantum dots will be limited to cryogenic temperatures. Here, we report the observation of a large, reversible, room-temperature magnetic response to charge state in free-standing colloidal ZnO nanocrystals doped with Mn2+ ions. Injected electrons activate new ferromagnetic Mn2+-Mn2+ Interactions that are strong enough to overcome antiferromagnetic coupling between nearest-neighbour dopants, making the full magnetic moments of all dopants observable. Analysis shows that this large effect occurs in spite of small pairwise electron-Mn2+ exchange energies, because of competing electron-mediated ferromagnetic interactions involving distant Mn2+ ions in the same nanocrystal.
机译:对掺杂的半导体纳米结构的磁态的电控制可以实现新的基于自旋的信息处理技术。为此,近来广泛的研究致力于检查在低温下衬底支撑的量子点中载流子介导的磁有序效应,其中载流子是通过光子吸收而瞬时引入的。在掺杂剂和电荷载流子之间发现的相对较弱的相互作用表明,量子点中的门控磁性将限于低温。在这里,我们报告观察到在掺杂了Mn2 +离子的独立式胶体ZnO纳米晶体中,对电荷状态具有大的可逆的室温磁响应。注入的电子激活了新的铁磁Mn2 + -Mn2 +相互作用,这种相互作用足够强大,可以克服最近邻掺杂剂之间的反铁磁耦合,从而可以观察到所有掺杂剂的完整磁矩。分析表明,尽管成对的电子-Mn2 +交换能量很小,但由于在同一纳米晶体中涉及遥远的Mn2 +离子的竞争性电子介导的铁磁相互作用而产生了这种大效应。

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