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卤化铅钙钛矿中的压缩暗核自旋态。

The squeezed dark nuclear spin state in lead halide perovskites.

作者信息

Kirstein E, Smirnov D S, Zhukov E A, Yakovlev D R, Kopteva N E, Dirin D N, Hordiichuk O, Kovalenko M V, Bayer M

机构信息

Experimental Physics 2, Department of Physics, TU Dortmund, 44227, Dortmund, Germany.

Ioffe Institute, 194021, St. Petersburg, Russia.

出版信息

Nat Commun. 2023 Oct 21;14(1):6683. doi: 10.1038/s41467-023-42265-8.

Abstract

Coherent many-body states are highly promising for robust quantum information processing. While far-reaching theoretical predictions have been made for various implementations, direct experimental evidence of their appealing properties can be challenging. Here, we demonstrate optical manipulation of the nuclear spin ensemble in the lead halide perovskite semiconductor FAPbBr (FA = formamidinium), targeting a long-postulated collective dark state that is insensitive to optical pumping after its build-up. Via optical orientation of localized hole spins we drive the nuclear many-body system into this entangled state, requiring a weak magnetic field of only a few milli-Tesla strength at cryogenic temperatures. During its fast establishment, the nuclear polarization along the optical axis remains small, while the transverse nuclear spin fluctuations are strongly reduced, corresponding to spin squeezing as evidenced by a strong violation of the generalized nuclear squeezing-inequality with ξ < 0.5. The dark state corresponds to an ~35-body entanglement between the nuclei. Dark nuclear spin states can be exploited to store quantum information benefiting from their long-lived many-body coherence and to perform quantum measurements with a precision beyond the standard limit.

摘要

相干多体态对于稳健的量子信息处理极具前景。尽管针对各种实现方式已经做出了深远的理论预测,但要获得其诱人特性的直接实验证据可能具有挑战性。在此,我们展示了在卤化铅钙钛矿半导体FAPbBr(FA = 甲脒)中对核自旋系综的光学操控,目标是一种长期假定的集体暗态,该暗态在形成后对光泵浦不敏感。通过局域空穴自旋的光学取向,我们将核多体系统驱动到这种纠缠态,在低温下仅需几毫特斯拉强度的弱磁场。在其快速建立过程中,沿光轴的核极化保持较小,而横向核自旋涨落则大幅降低,这对应于自旋压缩,这一点通过强烈违反广义核压缩不等式(ξ < 0.5)得到证明。该暗态对应于原子核之间约35体的纠缠。暗核自旋态可用于存储量子信息,受益于其长寿命的多体相干性,并可进行精度超越标准极限的量子测量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a66b/10590392/331f207d8da3/41467_2023_42265_Fig1_HTML.jpg

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