Quantenoptische Effekte in Quantenpunkt-Mikroresonatoren
Quantenoptische Effekte in Quantenpunkt-Mikroresonatoren
批准号:
167776844
负责人:
Professor Dr. Frank Jahnke
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2010
资助国家:
德国
项目状态:
已结题
起止时间:
2009-12-31 至 2017-12-31
中文摘要
本项目的目标是发展半导体量子点的微观模型,这种量子点可用作新型非经典光源的活性材料。对于原子系统,最近已经证明了一种超辐射激光器,其中利用发射器的自发同步来大大提高发射的光谱纯度。同时,发射并不是通过共振器中的光子存储的,而是作为发射器的相干相位。在这个项目中,将研究半导体量子点系统的相应效应。在最近的文献中,可以发现一些理论和实验的贡献,这解决了量子点的超辐射耦合对光致发光特性的影响。在本项目的上一阶段,在激光系统中也发现了明显的超辐射耦合特征。理论和实验小组之间的直接合作将用于确定系统和激发条件,其中量子点发射器的超辐射耦合起着核心作用。在传统的激光器中,量子点的激发通过势垒状态发生。共振量子点激发可以大大减小均匀线宽,当均匀线宽小于腔线宽时,可以达到"坏腔区",此时原子系统可以产生超辐射激光。对于量子点系统,我们将研究超辐射效应是否能够克服无意加宽的不利影响。对于通过微腔交换光子的量子点,非共振点-腔耦合效应可以减轻不可避免的展宽,这是最近研究的结果。此外,在使用opticalpumping的相应的实验研究,泵浦光的光子统计(相干与热辐射)上的发射特性的影响将被解决。在理论模型中,将在微观水平上考虑半导体特定的相互作用效应。基于最近观察到的发射器量子点激光器之间的超辐射耦合特征,将研究以下应用:利用超泊松统计产生非经典光。利用发射器之间的集体耦合效应降低激光阈值,由于超辐射量子阱的存在,提高了受激辐射的相干性,具有改进的相干特性或非经典光子统计的光源可以用于基本量子光学效应以及量子信息技术中的应用。
英文摘要
The aim of this project is the development of microscopic models for semiconductor quantum dotswhich can be used as active material in novel non-classical light sources. For atomic systems,recently a superradiant laser has been demonstrated in which a spontaneous synchronization ofthe emitters is utilized to strongly increase the spectral purity of the emission. At the same time, theemission was not stored via photons in the resonator, rather than as a coherent phase of theemitters. Within this project, the corresponding effects will be studied for semiconductor quantumdotsystems. In the recent literature, several theoretical and experimental contributions can befound, which address the influence of superradiant coupling of quantum dots onphotoluminescence properties. In the past phase of this project, clear signatures of superradiantcoupling also have been found in laser systems.A direct collaboration between theoretical and experimental groups will be used to identify systemsand excitation conditions, in which superradiant coupling of quantum-dot emitters plays a centralrole. In conventional lasers the excitation of quantum dots takes place via barrier states. Thesubsequent relaxation leads to dephasing, which drives the system into the incoherent regime.Resonant quantum-dot excitation can be used to strongly reduce the homogeneous line width.When the latter is smaller than the cavity line width, the "bad-cavity regime" can be reached, forwhich atomic systems can show superradiant lasing. For the quantum-dot system we will studywhether superradiant effects are able to overcome the detrimental influence of inhomogeneousbroadening. For quantum dots exchanging photons via a microcavity, the inhomogeneousbroadening is mitigated by off-resonant dot-cavity coupling effects, which have been recentlyexplored. Furthermore, in connection with the corresponding experimental studies using opticalpumping, the influence of the photon statistics of the pump light (coherent vs. thermal radiation) onthe emission properties will be addressed. In the theoretical models, semiconductor specificinteraction effects will be considered on a microscopic level.Based on the recently observed signatures of superradiant coupling between the emitters inquantum-dot lasers, the following applications will be studied:Generation of non-classical light with Super-Poisson-Statistics.Use of collective coupling effects between emitters for a laser-threshold reduction, for fasterlaser dynamics, as well as to facilitate stimulated emission with very low mean photon number.Improved coherence properties of the emission due to superradiant quantum-dot coupling.Light sources with improved coherence properties or non-classical photon statistics can be used infundamental quantum-optical effects as well as for applications in quantum informationtechnologies.
期刊论文(6)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1364/optica.5.000395
发表时间:
2018-03
期刊:
影响因子:
--
作者:
[G. Moody;Mawussey Segnon;I. Sagnes;R. Braive;A. Beveratos;I. Robert-Philip;N. Belabas;F. Jahnke;K. Silverman;R. Mirin;M. Stevens;C. Gies]
通讯作者:
G. Moody;Mawussey Segnon;I. Sagnes;R. Braive;A. Beveratos;I. Robert-Philip;N. Belabas;F. Jahnke;K. Silverman;R. Mirin;M. Stevens;C. Gies
DOI:
10.1103/physreva.96.023806
发表时间:
2016-06
期刊:
Physical Review A
影响因子:
2.9
作者:
[C. Gies;F. Gericke;P. Gartner;S. Holzinger;C. Hopfmann;T. Heindel;J. Wolters;C. Schneider;M. Florian;F. Jahnke;S. Hofling;M. Kamp;S. Reitzenstein]
通讯作者:
C. Gies;F. Gericke;P. Gartner;S. Holzinger;C. Hopfmann;T. Heindel;J. Wolters;C. Schneider;M. Florian;F. Jahnke;S. Hofling;M. Kamp;S. Reitzenstein
Optical and Quantum Coherence Study of 2D-Material Based Cavity-Enhanced Emitters and Nanolasers
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批准号:410408989
-
项目类别:Research Grants
-
资助金额:$0.0万
-
财政年份:2019
-
负责人:Professor Dr. Frank Jahnke
-
依托单位:
Microscopic description of tunnel-injection quantum-dot lasers
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批准号:281512079
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项目类别:Research Grants
-
资助金额:$0.0万
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财政年份:2015
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负责人:Professor Dr. Frank Jahnke
-
依托单位:
Configuration-picture-description of carrier scattering in semiconductor quantum dots
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批准号:244545680
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2014
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负责人:Professor Dr. Frank Jahnke
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依托单位:
Mikroskopische Beschreibung des optischen Gewinns von Quantenpunkt-Lasern
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批准号:163851055
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2010
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负责人:Professor Dr. Frank Jahnke
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依托单位:
Polaronen in Halbleiter-Quantenpunkten und deren Einfluss auf Ladungsträger-Streuung und optische Eigenschaften
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批准号:15682773
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项目类别:Research Grants
-
资助金额:$0.0万
-
财政年份:2005
-
负责人:Professor Dr. Frank Jahnke
-
依托单位:
Microscopic theory of nanostructured laser devices with short-wavelength emission
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批准号:5403272
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项目类别:Research Units
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资助金额:$0.0万
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财政年份:2003
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负责人:Professor Dr. Frank Jahnke
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依托单位:
Microscopic theory of light emission from semiconductor quantum dots in microcavities
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批准号:5380223
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项目类别:Research Units
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资助金额:$0.0万
-
财政年份:2002
-
负责人:Professor Dr. Frank Jahnke
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依托单位:
海外基金