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MoS /SrTiO 界面处的极化子电子空穴对。

Polaronic Trions at the MoS /SrTiO Interface.

机构信息

NUSNNI-NanoCore, National University of Singapore, Singapore, 117411, Singapore.

NUS Graduate School for Integrative Sciences and Engineering (NGS), National University of Singapore, Singapore, 117456, Singapore.

出版信息

Adv Mater. 2019 Oct;31(41):e1903569. doi: 10.1002/adma.201903569. Epub 2019 Aug 26.

Abstract

The reduced electrical screening in 2D materials provides an ideal platform for realization of exotic quasiparticles, that are robust and whose functionalities can be exploited for future electronic, optoelectronic, and valleytronic applications. Recent examples include an interlayer exciton, where an electron from one layer binds with a hole from another, and a Holstein polaron, formed by an electron dressed by a sea of phonons. Here, a new quasiparticle is reported, "polaronic trion" in a heterostructure of MoS /SrTiO (STO). This emerges as the Fröhlich bound state of the trion in the atomically thin monolayer of MoS and the very unique low energy soft phonon mode (≤7 meV, which is temperature and field tunable) in the quantum paraelectric substrate STO, arising below its structural antiferrodistortive (AFD) phase transition temperature. This dressing of the trion with soft phonons manifests in an anomalous temperature dependence of photoluminescence emission leading to a huge enhancement of the trion binding energy (≈70 meV). The soft phonons in STO are sensitive to electric field, which enables field control of the interfacial trion-phonon coupling and resultant polaronic trion binding energy. Polaronic trions could provide a platform to realize quasiparticle-based tunable optoelectronic applications driven by many body effects.

摘要

二维材料中的电屏蔽减少为实现奇异准粒子提供了理想的平台,这些准粒子稳定且其功能可用于未来的电子、光电和谷电子应用。最近的例子包括层间激子,其中一个层的电子与另一个层的空穴结合,以及由声子海包裹的电子形成的 Holstein 极化子。在这里,报告了一种新的准粒子,即 MoS/ SrTiO(STO)异质结构中的“极化子三体”。这是在 MoS 的原子层薄单层中的三体的 Fröhlich 束缚态,以及在量子顺电体 STO 中非常独特的低能软声子模式(≤7meV,可通过温度和场进行调谐),低于其结构反铁电畸变(AFD)相变温度。三体与软声子的这种包裹表现为光致发光发射的异常温度依赖性,导致三体结合能(≈70meV)的巨大增强。STO 中的软声子对电场敏感,这使得能够控制界面三体-声子耦合以及由此产生的极化子三体结合能。极化子三体为实现基于准粒子的可调谐光电应用提供了平台,这些应用受多体效应驱动。

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