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      Aggregation promotes charge separation in fullerene-indacenodithiophene dyad

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          Abstract

          Fast photoinduced charge separation (CS) and long-lived charge-separated state (CSS) in small-molecules facilitate light-energy conversion, while simultaneous attainment of both remains challenging. Here we accomplish this through aggregation based on fullerene-indacenodithiophene dyads. Transient absorption spectroscopy reveals that, compared to solution, the CS time in aggregates is accelerated from 41.5 ps to 0.4 ps, and the CSS lifetime is prolonged from 311.4 ps to 40 μs, indicating that aggregation concomitantly promotes fast CS and long-lived CSS. Fast CS arises from the hot charge-transfer states dissociation, opening up additional resonant channels to free carriers (FCs); subsequently, charge recombination into intramolecular triplet CSS becomes favorable mediated by spin-uncorrelated FCs. Different from fullerene/indacenodithiophene blends, the unique CS mechanism in dyad aggregates reduces the long-lived CSS dependence on molecular order, resulting in a CSS lifetime 200 times longer than blends. This endows the dyad aggregates to exhibit both photoelectronic switch properties and superior photocatalytic capabilities.

          Abstract

          Light-harvesting applications require dyes with efficiently formed long-lived charge separated electronic states. Here the authors achieve this through aggregation in fullerene dyads and reveal their excited-state dynamics mechanism.

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          Most cited references58

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          Multiwfn: a multifunctional wavefunction analyzer.

          Multiwfn is a multifunctional program for wavefunction analysis. Its main functions are: (1) Calculating and visualizing real space function, such as electrostatic potential and electron localization function at point, in a line, in a plane or in a spatial scope. (2) Population analysis. (3) Bond order analysis. (4) Orbital composition analysis. (5) Plot density-of-states and spectrum. (6) Topology analysis for electron density. Some other useful utilities involved in quantum chemistry studies are also provided. The built-in graph module enables the results of wavefunction analysis to be plotted directly or exported to high-quality graphic file. The program interface is very user-friendly and suitable for both research and teaching purpose. The code of Multiwfn is substantially optimized and parallelized. Its efficiency is demonstrated to be significantly higher than related programs with the same functions. Five practical examples involving a wide variety of systems and analysis methods are given to illustrate the usefulness of Multiwfn. The program is free of charge and open-source. Its precompiled file and source codes are available from http://multiwfn.codeplex.com. Copyright © 2011 Wiley Periodicals, Inc.
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            Effect of the damping function in dispersion corrected density functional theory.

            It is shown by an extensive benchmark on molecular energy data that the mathematical form of the damping function in DFT-D methods has only a minor impact on the quality of the results. For 12 different functionals, a standard "zero-damping" formula and rational damping to finite values for small interatomic distances according to Becke and Johnson (BJ-damping) has been tested. The same (DFT-D3) scheme for the computation of the dispersion coefficients is used. The BJ-damping requires one fit parameter more for each functional (three instead of two) but has the advantage of avoiding repulsive interatomic forces at shorter distances. With BJ-damping better results for nonbonded distances and more clear effects of intramolecular dispersion in four representative molecular structures are found. For the noncovalently-bonded structures in the S22 set, both schemes lead to very similar intermolecular distances. For noncovalent interaction energies BJ-damping performs slightly better but both variants can be recommended in general. The exception to this is Hartree-Fock that can be recommended only in the BJ-variant and which is then close to the accuracy of corrected GGAs for non-covalent interactions. According to the thermodynamic benchmarks BJ-damping is more accurate especially for medium-range electron correlation problems and only small and practically insignificant double-counting effects are observed. It seems to provide a physically correct short-range behavior of correlation/dispersion even with unmodified standard functionals. In any case, the differences between the two methods are much smaller than the overall dispersion effect and often also smaller than the influence of the underlying density functional. Copyright © 2011 Wiley Periodicals, Inc.
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              An electron acceptor challenging fullerenes for efficient polymer solar cells.

              A novel non-fullerene electron acceptor (ITIC) that overcomes some of the shortcomings of fullerene acceptors, for example, weak absorption in the visible spectral region and limited energy-level variability, is designed and synthesized. Fullerene-free polymer solar cells (PSCs) based on the ITIC acceptor are demonstrated to exhibit power conversion efficiencies of up to 6.8%, a record for fullerene-free PSCs.
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                Author and article information

                Contributors
                zkywubo@iccas.ac.cn
                crwang@iccas.ac.cn
                Journal
                Nat Commun
                Nat Commun
                Nature Communications
                Nature Publishing Group UK (London )
                2041-1723
                6 July 2024
                6 July 2024
                2024
                : 15
                : 5681
                Affiliations
                [1 ]GRID grid.418929.f, ISNI 0000 0004 0596 3295, Beijing National Laboratory for Molecular Sciences, , Key Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Chinese Academy of Sciences, ; Beijing, 100190 China
                [2 ]University of Chinese Academy of Sciences, ( https://ror.org/05qbk4x57) Beijing, 100049 China
                [3 ]School of Science, Beijing University of Posts and Telecommunications (BUPT), ( https://ror.org/04w9fbh59) Beijing, 100876 China
                [4 ]College of Science, Hunan Key Laboratory of Mechanism and Technology of Quantum Information, National University of Defense Technology, ( https://ror.org/05d2yfz11) Changsha, 410003 China
                [5 ]Spin-X Institute, School of Chemistry and Chemical Engineering, South China University of Technology, ( https://ror.org/0530pts50) Guangzhou, 511442 China
                [6 ]GRID grid.458502.e, ISNI 0000 0004 0644 7196, Key Laboratory of Photochemical Conversion and Optoelectronic Materials and CityU-CAS Joint Laboratory of Functional Materials and Devices, , Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, ; Beijing, 100190 China
                [7 ]GRID grid.418929.f, ISNI 0000 0004 0596 3295, Beijing National Laboratory for Molecular Sciences, , CAS Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, ; Beijing, 100190 China
                [8 ]Department of Chemistry and Pharmacy and Interdisciplinary Center for Molecular Materials (ICMM), Friedrich-Alexander-Universität Erlangen-Nürnberg, ( https://ror.org/00f7hpc57) Erlangen, 91058 Germany
                Author information
                http://orcid.org/0009-0005-8794-3638
                http://orcid.org/0000-0002-7818-2807
                http://orcid.org/0000-0001-5682-2589
                http://orcid.org/0009-0004-4662-7703
                http://orcid.org/0000-0003-2644-7452
                http://orcid.org/0000-0001-7984-6639
                Article
                50001
                10.1038/s41467-024-50001-z
                11227505
                38971813
                45d27ba8-50ac-422c-b38d-3c0979466ea3
                © The Author(s) 2024

                Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/.

                History
                : 19 December 2023
                : 25 June 2024
                Funding
                Funded by: the National Key R&D Program of China (Grant No. 2022YFA1205900)
                Funded by: FundRef https://doi.org/10.13039/501100001809, National Natural Science Foundation of China (National Science Foundation of China);
                Award ID: 52322204, 52072374
                Award Recipient :
                Funded by: the Youth Innovation Promotion Association of CAS (Grant No. Y2022015)
                Categories
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                © Springer Nature Limited 2024

                Uncategorized
                carbon nanotubes and fullerenes,physical chemistry,photochemistry
                Uncategorized
                carbon nanotubes and fullerenes, physical chemistry, photochemistry

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