相互作用的Janus-like PbSe和CdSe量子点异质结构的穿越空间和穿越键电荷转移性质的从头计算

IF 1.6 4区 化学 Q4 CHEMISTRY, PHYSICAL Molecular Physics Pub Date : 2023-10-26 DOI:10.1080/00268976.2023.2273415
Hadassah B. Griffin, Andrei B. Kryjevski, Dmitri S. Kilin
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引用次数: 0

摘要

摘要:异质结构量子点(QDs)是由两个量子点纳米晶体(NCs)在界面上连接而成。它们在光伏太阳能电池等应用中很有用。nc之间的界面性质决定了电子-空穴复合速率和电荷转移效率。因此,对两种材料之间的接口如何工作的基本理解是有用的。为了进一步理解这一点,我们模拟了两个由Cd33Se33 + Pb68Se68 NCs组成的Janus-like几何结构的异质结构QD模型。第一个类janus模型在两个nc之间有一个键连接,尺寸约为16 × 17 × 29 Å3。第二个模型在nc之间有一个贯穿空间的连接,大约是16 × 17 × 31 Å3。我们使用密度泛函理论来模拟这些模型的基态性质。然后使用非绝热的动态耦合计算来构建Redfield张量,该张量描述了由于非辐射松弛引起的激发态动力学。从我们的结果中,我们确定了一个定性趋势,表明连接两个nc的键减少了空穴弛豫时间。我们还确定了一个电子-空穴激励对的样本,通过键模型允许净正或负的数值净电荷转移,这取决于激励对。关键字:非绝热耦合redfield张量异质结构量子点太阳能电池辐射松弛致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢致谢DE-AC02-05CH11231,分配“表面光催化和光诱导电荷转移动力学的计算模型”。DSK感谢NSF CHE-1944921的支持。DSK感谢David Micha、Sergei Tretiak、Oleg Prezhdo和Svetlana Kilina鼓舞人心的讨论。HG感谢David Graupner、Landon Johnson、Yulun Han博士、Dinesh Thapa博士、Kamrun Nahar Keya、Patricia Adeoye、Adam Flesche、William Tupa、Joseph Granlie、Amara Arshad、Meade Erickson、Sarah Ghazanfari和其他合作者提供的编辑建议。披露声明作者未报告潜在的利益冲突。我们感谢美国国家科学基金会通过NSF CHE-2004197对本研究的支持。本研究由化学科学、地球科学和生物科学部资助[批准号DE-AC02-05CH11231,光催化和光诱导表面电荷转移动力学的分配计算模型];国家科学基金[批准号1944921]。
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Ab initio calculations of through-space and through-bond charge-transfer properties of interacting Janus-like PbSe and CdSe quantum dot heterostructures
AbstractHeterostructure quantum dots (QDs) are composed of two QD nanocrystals (NCs) conjoined at an interface. They are useful in applications such as photovoltaic solar cells. The properties of the interface between the NCs determine the efficiency of electron–hole recombination rates and charge transfer. Therefore, a fundamental understanding of how this interface works between the two materials is useful. To contribute to this understanding, we simulated two isolated heterostructure QD models with Janus-like geometry composed of Cd33Se33 + Pb68Se68 NCs. The first Janus-like model has a bond connection between the two NCs and is approximately 16 × 17 × 29 Å3 in size. The second model has a through-space connection between the NCs and is approximately 16 × 17 × 31 Å3. We use density functional theory to simulate the ground state properties of these models. Nonadiabatic on-the-fly couplings calculations were then used to construct the Redfield Tensor, which described the excited state dynamics due to nonradiative relaxation. From our results, we identified a qualitative trend which shows that having a bond connecting the two NCs reduces hole relaxation time. We also identified for a sample of electron–hole excitations pairs that the through-bond model allows for a net positive or negative numerical net charge transfer, depending on the excitation pair.KEYWORDS: Nonadiabatic couplingsRedfield tensorheterostructure quantum dotssolar cellsnonradiative relaxation AcknowledgementsWe also acknowledge that this research used resources of the National Energy Research Scientific Computing Center (NERSC), a U.S. Department of Energy Office of Science User Facility located at Lawrence Berkeley National Laboratory, operated under Contract No. DE-AC02-05CH11231, allocation ‘Computational Modeling of Photo-catalysis and Photo-induced Charge Transfer Dynamics on Surfaces'. DSK acknowledges the support of NSF CHE-1944921. DSK thanks David Micha, Sergei Tretiak, Oleg Prezhdo, and Svetlana Kilina for inspiring discussions. HG thanks David Graupner, Landon Johnson, Dr. Yulun Han, Dr. Dinesh Thapa, Kamrun Nahar Keya, Patricia Adeoye, Adam Flesche, William Tupa, Joseph Granlie, Amara Arshad, Meade Erickson, Sarah Ghazanfari, and other collaborators for editorial suggestions.Disclosure statementNo potential conflict of interest was reported by the author(s).FundingWe gratefully acknowledge the support of the National Science foundation via NSF CHE-2004197 for this study. This work was supported by Chemical Sciences, Geosciences, and Biosciences Division [grant number DE-AC02-05CH11231, allocation Computational Modeling of Photocatalysis and Photo-induced Charge Transfer Dynamics on Surfaces]; National Science Foundation [grant number 1944921].
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来源期刊
Molecular Physics
Molecular Physics 物理-物理:原子、分子和化学物理
CiteScore
3.60
自引率
5.90%
发文量
269
审稿时长
2 months
期刊介绍: Molecular Physics is a well-established international journal publishing original high quality papers in chemical physics and physical chemistry. The journal covers all experimental and theoretical aspects of molecular science, from electronic structure, molecular dynamics, spectroscopy and reaction kinetics to condensed matter, surface science, and statistical mechanics of simple and complex fluids. Contributions include full papers, preliminary communications, research notes and invited topical review articles.
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