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锰掺杂的倒置核壳结构ZnSe-CdSe纳米晶体中的可调谐磁交换相互作用

Tunable magnetic exchange interactions in manganese-doped inverted core-shell ZnSe-CdSe nanocrystals.

作者信息

Bussian David A, Crooker Scott A, Yin Ming, Brynda Marcin, Efros Alexander L, Klimov Victor I

机构信息

Chemistry Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Nat Mater. 2009 Jan;8(1):35-40. doi: 10.1038/nmat2342. Epub 2008 Dec 14.

Abstract

Magnetic doping of semiconductor nanostructures is actively pursued for applications in magnetic memory and spin-based electronics. Central to these efforts is a drive to control the interaction strength between carriers (electrons and holes) and the embedded magnetic atoms. In this respect, colloidal nanocrystal heterostructures provide great flexibility through growth-controlled 'engineering' of electron and hole wavefunctions in individual nanocrystals. Here, we demonstrate a widely tunable magnetic sp-d exchange interaction between electron-hole excitations (excitons) and paramagnetic manganese ions using 'inverted' core-shell nanocrystals composed of Mn(2+)-doped ZnSe cores overcoated with undoped shells of narrower-gap CdSe. Magnetic circular dichroism studies reveal giant Zeeman spin splittings of the band-edge exciton that, surprisingly, are tunable in both magnitude and sign. Effective exciton g-factors are controllably tuned from -200 to +30 solely by increasing the CdSe shell thickness, demonstrating that strong quantum confinement and wavefunction engineering in heterostructured nanocrystal materials can be used to manipulate carrier-Mn(2+) wavefunction overlap and the sp-d exchange parameters themselves.

摘要

为了应用于磁存储器和自旋电子学,人们积极探索对半导体纳米结构进行磁性掺杂。这些努力的核心是控制载流子(电子和空穴)与嵌入的磁性原子之间相互作用强度的驱动力。在这方面,胶体纳米晶体异质结构通过对单个纳米晶体中电子和空穴波函数进行生长控制的“工程设计”提供了极大的灵活性。在这里,我们使用由Mn(2+)掺杂的ZnSe核和覆盖有窄带隙CdSe未掺杂壳层组成的“倒置”核壳纳米晶体,展示了电子 - 空穴激发(激子)与顺磁性锰离子之间广泛可调的磁sp-d交换相互作用。磁圆二色性研究揭示了带边激子的巨大塞曼自旋分裂,令人惊讶的是,其大小和符号均可调。仅通过增加CdSe壳层厚度,有效激子g因子就可以从-200可控地调至+30,这表明异质结构纳米晶体材料中的强量子限制和波函数工程可用于操纵载流子与Mn(2+)的波函数重叠以及sp-d交换参数本身。

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