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Towards controlled interaction of Rydberg excitons in integrated and scalable solid state devices

Towards controlled interaction of Rydberg excitons in integrated and scalable solid state devices
在集成和可扩展的固态器件中实现里德伯激子的受控相互作用
批准号:
316223591
负责人:
Professor Dr. Harald Giessen
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2016
资助国家:
德国
项目状态:
已结题
起止时间:
2015-12-31 至 2023-12-31

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中文摘要
翻译
我们研究了半导体铜(Cu2O)中的里德伯激子,其主量子数高达n=25,激子玻尔半径在微米范围内。半导体中这些巨大的单量子物体最近才被发现,它们作为量子器件的潜力尚未实现。这些系统的许多特性是未知的,仍然需要确定。我们使用人工生长的和天然的几平方毫米大小的Cu2O单晶,并在温度低至1.5 K的情况下,在黄色的p-, s-和d-激子系列周围进行AM/ fm调制光谱,使用570 nm波长范围的可调谐窄带二极管激光器。在半导体上印刷飞秒直接激光书写的微透镜将允许聚焦到微米大小的焦点,并且通过倾斜入射角,可以进行空间分辨泵浦探针实验。这给出了库仑相互作用距离的直接信息,并确定了里德伯封锁半径。电场和磁场都会引起对称性破缺,并改变波函数性质、光跃迁选择规则,从而改变相互作用。利用我们的空间分辨泵浦问题方案,我们可以研究eit耦合方案对里德伯激子相互作用的影响。3D打印相板和离子束磨菲涅耳相板将允许直接在铜晶体上的衍射限制焦斑上产生曲率角动量光。由于里德伯激子的尺寸为几个100nm,它们与OAM光模式的空间重叠是研究光的额外角动量对偶极选择规则的破坏的理想选择。光纤方案与多芯单模光纤和印刷透镜的近衍射限制成像相结合,将允许一个集成的光纤方案,该方案可以处理整个里德堡激子矩阵,通过透明电极网格进行控制和斯塔克切换。这将导致一种可扩展的、光纤集成的设备,即使在亚开尔文的温度下,也可以在没有光学窗口的低温恒温器中进行测量,尽可能避免声子散射。在pp1929中,我们将受益于与多特蒙德的manfred Bayer小组的相互作用,他也在研究里德堡激子,以及与其他原子物理小组,如斯图加特的tilman Pfau和Robert Löw小组的相互作用,他们研究原子系统中的里德堡相互作用以及非线性开关的EIT和腔QED方案。此外,我们在实验上与达姆施塔特的Gerhard Birkl合作,他将我们的微透镜阵列用于他的原子里德伯原子阵列。我们将与罗斯托克的Stefan Scheel和斯图加特的hanspeterb<s:1> chler/Jörg Main的理论小组就OAM选择规则和偶极矩阵元素以及Rydberg量子阱激子能计算进行合作。
英文摘要
We study Rydberg excitons in the semiconductor cuprite (Cu2O),which exhibit principal quantum numbers as high as n=25 andexcitonic Bohr radii in the micrometer range. These giant singlequantum objects in semiconductors have been discovered onlyrecently, and their potential as quantum devices has yet to berealized. Many properties of these systems are unknown and stillhave to be determined. We use artificially grown as well as naturalsingle Cu2O crystals of several mm² size and carry out AM/FMmodulation spectroscopy around the yellow p-, s-, and d-excitonseries at temperatures down to 1.5 K, using a tunable narrowbanddiode laser in the 570 nm wavelength range. Microlenses printed withfemtosecond direct laser writing on top of the semiconductors willallow for focusing down to micrometer sized focal spots, and by tiltingthe incidence angle, spatially resolved pump-probe experiments canbe carried out. This gives direct information on the Coulombinteraction distance and determines the Rydberg blockade radius.Both electric and magnetic fields cause a symmetry breaking andmodify the wavefunction nature, the optical transition selection rules,and hence the interaction. Using our spatially resolved pump-probescheme, we can investigate the influence of EIT-coupling schemesonto the Rydberg exciton interactions. 3D printed phaseplates andion-beam milled Fresnel-phaseplates will allow for generation oforbital angular momentum light directly in diffraction limited focalspots on the cuprite crystal. As the Rydberg excitons are several 100nm in size, their spatial overlap with the OAM light mode is ideal tostudy violation of dipolar selection rules upon additional angularmomentum of light. The fiber scheme in combination with multicoresingle mode fibers and near-diffraction limited imaging by printedlenses will allow for an integrated fiber-only scheme which canaddress a whole matrix of Rydberg excitons, being controllable andStark switchable through the transparent electrode grid. This will leadtowards a scalable, fiber-integrated device which can be measured incryostats with no optical windows even at sub-Kelvin temperatures,avoiding phonon scattering as much as possible. Within theSPP1929, we are going to benefit from interactions with the group ofManfred Bayer in Dortmund, who is also studying Rydberg excitons,as well as with the other atomic physics groups such as the one ofTilman Pfau and Robert Löw in Stuttgart, who deal with Rydberginteraction in atomic systems as well as EIT and cavity QED schemesfor nonlinear switching. Additionally, we experimentally collaboratewith Gerhard Birkl in Darmstadt, who uses our microlens arrays for hisatomic Rydberg atom arrays. We are going to collaborate with thetheory groups of Stefan Scheel in Rostock and HanspeterBüchler/Jörg Main in Stuttgart regarding the OAM selection rules and dipole matrix elements as well as the Rydberg quantum well excitonenergy calculations.
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