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设计规则、精确的焓预测以及化学计量比铕量子存储候选物的合成

Design Rules, Accurate Enthalpy Prediction, and Synthesis of Stoichiometric Eu Quantum Memory Candidates.

作者信息

Riedel Zachary W, Shoemaker Daniel P

机构信息

Department of Materials Science and Engineering, University of Illinois Urbana─Champaign, Urbana, Illinois 61801, United States.

Materials Research Laboratory, University of Illinois Urbana─Champaign, Urbana, Illinois 61801, United States.

出版信息

J Am Chem Soc. 2024 Jan 24;146(3):2113-2121. doi: 10.1021/jacs.3c11615. Epub 2024 Jan 12.

DOI:10.1021/jacs.3c11615
PMID:38214913
Abstract

Stoichiometric Eu compounds have recently shown promise for building dense, optically addressable quantum memory as the cations' long nuclear spin coherence times and shielded 4f electron optical transitions provide reliable memory platforms. Implementing such a system, though, requires ultranarrow, inhomogeneous linewidth compounds. Finding this rare linewidth behavior within a wide range of potential chemical spaces remains difficult, and while exploratory synthesis is often guided by density functional theory (DFT) calculations, lanthanides' 4f electrons pose unique challenges for stability predictions. Here, we report DFT procedures that reliably reproduce known phase diagrams and correctly predict two experimentally realized quantum memory candidates. We are the first to synthesize the double perovskite halide CsNaEuF. It is an air-stable compound with a calculated band gap of 5.0 eV that surrounds Eu with mononuclidic elements, which are desirable for avoiding inhomogeneous linewidth broadening. We also analyze computational database entries to identify phosphates and iodates as the next generation of chemical spaces for stoichiometric quantum memory system studies. This work identifies new candidate platforms for exploring chemical effects on quantum memory candidates' inhomogeneous linewidth while also providing a framework for screening Eu compound stability with DFT.

摘要

化学计量比的铕化合物最近显示出有望构建密集的、可光寻址的量子存储器,因为阳离子的长核自旋相干时间和屏蔽的4f电子光学跃迁提供了可靠的存储平台。然而,要实现这样一个系统,需要超窄的、非均匀线宽的化合物。在广泛的潜在化学空间中找到这种罕见的线宽行为仍然很困难,虽然探索性合成通常由密度泛函理论(DFT)计算指导,但镧系元素的4f电子对稳定性预测提出了独特的挑战。在这里,我们报告了DFT程序,该程序能够可靠地重现已知的相图并正确预测两种通过实验实现的量子存储器候选物。我们首次合成了双钙钛矿卤化物CsNaEuF。它是一种空气稳定的化合物,计算出的带隙为5.0 eV,用单核元素包围铕,这对于避免非均匀线宽展宽是理想的。我们还分析了计算数据库条目,以确定磷酸盐和碘酸盐是用于化学计量比量子存储系统研究的下一代化学空间。这项工作确定了新的候选平台,用于探索化学效应对量子存储候选物非均匀线宽的影响,同时也提供了一个用DFT筛选铕化合物稳定性的框架。

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