圆极化
自旋电子学
光致发光
自旋(空气动力学)
材料科学
量子点
光子
分子物理学
旋转
光子学
自旋极化
凝聚态物理
光电子学
物理
电子
磁场
光学
热力学
量子力学
铁磁性
作者
Suryakant Mishra,Eric G. Bowes,Somak Majumder,Jennifer A. Hollingsworth,Han Htoon,Andrew C. Jones
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-03-14
卷期号:18 (12): 8663-8672
被引量:18
标识
DOI:10.1021/acsnano.3c08676
摘要
One of the central aims of the field of spintronics is the control of individual electron spins to effectively manage the transmission of quantized data. One well-known mechanism for controlling electronic spin transport is the chiral-induced spin-selectivity (CISS) effect in which a helical nanostructure imparts a preferential spin orientation on the electronic transport. One potential application of the CISS effect is as a transduction pathway between electronic spin and circularly polarized light within nonreciprocal photonic devices. In this work, we identify and quantify the degree of chiral-induced spin-selective electronic transport in helical polyaniline films using magnetoconductive atomic force microscopy (mcAFM). We then induce circularly polarized quantum light emission from CdSe/CdS core/shell quantum dots placed on these films, demonstrating a degree of circular polarization of up to ∼21%. Utilizing time-resolved photoluminescence microscopy, we measure the radiative lifetime difference associated with left- and right-handed circular polarizations of single emitters. These lifetime differences, in combination with Kelvin probe mapping of the variation of surface potential with magnetization of the substrate, help establish an energy level diagram describing the spin-dependent transport pathways that enable the circularly polarized photoluminescence.
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