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Journal ArticleDOI

Ab initio nonadiabatic molecular dynamics of charge carriers in metal halide perovskites

TLDR
In this paper, a review of recent theoretical investigations of excited state dynamics in metal halide perovskites (MHPs), carried out using a state-of-the-art methodology combining nonadiabatic molecular dynamics with real-time time-dependent density functional theory, is presented.
Abstract
Photoinduced nonequilibrium processes in nanoscale materials play key roles in photovoltaic and photocatalytic applications. This review summarizes recent theoretical investigations of excited state dynamics in metal halide perovskites (MHPs), carried out using a state-of-the-art methodology combining nonadiabatic molecular dynamics with real-time time-dependent density functional theory. The simulations allow one to study evolution of charge carriers at the ab initio level and in the time-domain, in direct connection with time-resolved spectroscopy experiments. Eliminating the need for the common approximations, such as harmonic phonons, a choice of the reaction coordinate, weak electron–phonon coupling, a particular kinetic mechanism, and perturbative calculation of rate constants, we model full-dimensional quantum dynamics of electrons coupled to semiclassical vibrations. We study realistic aspects of material composition and structure and their influence on various nonequilibrium processes, including nonradiative trapping and relaxation of charge carriers, hot carrier cooling and luminescence, Auger-type charge–charge scattering, multiple excitons generation and recombination, charge and energy transfer between donor and acceptor materials, and charge recombination inside individual materials and across donor/acceptor interfaces. These phenomena are illustrated with representative materials and interfaces. Focus is placed on response to external perturbations, formation of point defects and their passivation, mixed stoichiometries, dopants, grain boundaries, and interfaces of MHPs with charge transport layers, and quantum confinement. In addition to bulk materials, perovskite quantum dots and 2D perovskites with different layer and spacer cation structures, edge passivation, and dielectric screening are discussed. The atomistic insights into excited state dynamics under realistic conditions provide the fundamental understanding needed for design of advanced solar energy and optoelectronic devices.

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Journal ArticleDOI

Material research from the viewpoint of functional motifs

TL;DR: In this paper , the role of functional motifs and their arrangement in materials, with representative examples, is presented, and the microscopic structures of these examples can be classified into six types on a length scale smaller than ∼10 nm with maximum subatomic resolution, i.e., crystal, magnetic, aperiodic, defect, local and electronic structures.
Journal ArticleDOI

How Hole Injection Accelerates Both Ion Migration and Nonradiative Recombination in Metal Halide Perovskites.

TL;DR: In this article , the authors demonstrate that hole injection accelerates ion migration by decreasing the diffusion barrier and shortening the migration length, and the injected hole also promotes the nonradiative charge recombination by strengthening electron-phonon interactions in the low-frequency region and prolonging the quantum coherence time.
Journal ArticleDOI

Common Defects Accelerate Charge Carrier Recombination in CsSnI3 without Creating Mid-Gap States.

TL;DR: In this article, the authors show that common intrinsic defects accelerate nonradiative charge recombination in lead-free metal halide perovskites without creating midgap traps.
Journal ArticleDOI

Dependence between Structural and Electronic Properties of CsPbI3: Unsupervised Machine Learning of Nonadiabatic Molecular Dynamics.

TL;DR: In this article, the authors used unsupervised machine learning on the trajectories from a nonadiabatic molecular dynamics simulation with time-dependent Kohn-Sham density functional theory to elucidate the structural parameters with the largest influence on nonradiative recombination of charge carriers in CsPbI3, which forms the basis for solar energy and optoelectronic applications.
Journal ArticleDOI

Efficient passivation of DY center in CH3NH3PbBr3 by chlorine: Quantum molecular dynamics

TL;DR: Using nonadiabatic molecular dynamics and time-domain density functional theory, the authors demonstrate that the DY− center forms a deep, highly localized hole trap, which accelerates nonradiative relaxation tenfold and is responsible for 90% of carrier losses.
References
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Journal ArticleDOI

Time-Domain Ab Initio Modeling of Photoinduced Dynamics at Nanoscale Interfaces

TL;DR: The detailed atomistic insights available from time-domain ab initio studies provide a unique description and a comprehensive understanding of the competition between electron transfer, thermal relaxation, energy transfer, and charge recombination processes that will directly guide the development of organic and hybrid solar cells, as well as photocatalytic, electronic, spintronic, and other devices relying on complex interfacial dynamics.
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Understanding Detrimental and Beneficial Grain Boundary Effects in Halide Perovskites

TL;DR: Correlating true grain size with photoluminescence lifetime, carrier diffusion length, and mobility shows that grain boundaries are not benign but have a recombination velocity comparable to that of crystalline silicon, which offers a possible explanation for the mysteriously long lifetime and record efficiency achieved in small grain halide perovskite thin films.
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Shallow halogen vacancies in halide optoelectronic materials

TL;DR: In this article, several halide optoelectronic materials, such as TlBr, were studied to understand the material chemistry and structure that determine whether a halide is a shallow or deep defect.
Journal ArticleDOI

Control of Charge Carriers Trapping and Relaxation in Hematite by Oxygen Vacancy Charge: Ab Initio Non-adiabatic Molecular Dynamics

TL;DR: The study provides a detailed atomistic understanding of carrier dynamics in hematite, and rationalizes the experimentally reported activation of α-Fe2O3 photoanodes by incorporation of Ov defects.
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Photoinduced Dynamics in Semiconductor Quantum Dots: Insights from Time-Domain ab Initio Studies

TL;DR: The atomistic description of QDs complements phenomenological models, provides important details, and creates new scientific paradigms, and the dependence of the relaxation on the excitation energy and the density of states clarify the controversies regarding the phonon bottleneck in the photoexcited electron relaxation.
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