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  1. Article ; Online: Charge Transport and Ion Kinetics in 1D TiS

    Miller, Edwin J / Hansen, Kameron R / Whittaker-Brooks, Luisa

    ACS nanoscience Au

    2024  Volume 4, Issue 2, Page(s) 146–157

    Abstract: Improving charge insertion into intercalation hosts is essential for crucial energy and memory technologies. The layered material ... ...

    Abstract Improving charge insertion into intercalation hosts is essential for crucial energy and memory technologies. The layered material TiS
    Language English
    Publishing date 2024-02-13
    Publishing country United States
    Document type Journal Article
    ISSN 2694-2496
    ISSN (online) 2694-2496
    DOI 10.1021/acsnanoscienceau.3c00059
    Database MEDical Literature Analysis and Retrieval System OnLINE

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  2. Article ; Online: Concepts and principles of self-n-doping in perylene diimide chromophores for applications in biochemistry, energy harvesting, energy storage, and catalysis.

    Powell, Daniel / Whittaker-Brooks, Luisa

    Materials horizons

    2022  Volume 9, Issue 8, Page(s) 2026–2052

    Abstract: Self-doping is an essential method of increasing carrier concentrations in organic electronics that eliminates the need to tailor host-dopant miscibility, a necessary step when employing molecular dopants. Self-n-doping can be accomplished using amines ... ...

    Abstract Self-doping is an essential method of increasing carrier concentrations in organic electronics that eliminates the need to tailor host-dopant miscibility, a necessary step when employing molecular dopants. Self-n-doping can be accomplished using amines or ammonium counterions as an electron source, which are being incorporated into an ever-increasingly diverse range of organic materials spanning many applications. Self-n-doped materials have demonstrated exemplary and, in many cases, benchmark performances in a variety of applications. However, an in-depth review of the method is lacking. Perylene diimide (PDI) chromophores are an important mainstay in the semiconductor literature with well-known structure-function characteristics and are also one of the most widely utilized scaffolds for self-n-doping. In this review, we describe the unique properties of self-n-doped PDIs, delineate structure-function relationships, and discuss self-n-doped PDI performance in a range of applications. In particular, the impact of amine/ammonium incorporation into the PDI scaffold on doping efficiency is reviewed with regard to attachment mode, tether distance, counterion selection, and steric encumbrance. Self-n-doped PDIs are a unique set of PDI structural derivatives whose properties are amenable to a broad range of applications such as biochemistry, solar energy conversion, thermoelectric modules, batteries, and photocatalysis. Finally, we discuss challenges and the future outlook of self-n-doping principles.
    MeSH term(s) Ammonium Compounds ; Catalysis ; Perylene ; Semiconductors ; Solar Energy
    Chemical Substances Ammonium Compounds ; Perylene (5QD5427UN7)
    Language English
    Publishing date 2022-08-01
    Publishing country England
    Document type Journal Article ; Review ; Research Support, Non-U.S. Gov't ; Research Support, U.S. Gov't, Non-P.H.S.
    ZDB-ID 2744250-0
    ISSN 2051-6355 ; 2051-6347
    ISSN (online) 2051-6355
    ISSN 2051-6347
    DOI 10.1039/d2mh00279e
    Database MEDical Literature Analysis and Retrieval System OnLINE

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  3. Book ; Online: Exciton properties

    Hansen, Kameron R. / Colton, John S. / Whittaker-Brooks, Luisa

    learning from a decade of measurements on halide perovskites and transition metal dichalcogenides

    2023  

    Abstract: The exciton binding energy ($E_b$) is a key parameter that governs the physics of many optoelectronic devices. At their best, trustworthy and precise measurements of $E_b$ challenge theoreticians to refine models, are a driving force in advancing the ... ...

    Abstract The exciton binding energy ($E_b$) is a key parameter that governs the physics of many optoelectronic devices. At their best, trustworthy and precise measurements of $E_b$ challenge theoreticians to refine models, are a driving force in advancing the understanding a material system, and lead to efficient device design. At their worst, inaccurate $E_b$ measurements lead theoreticians astray, sew confusion within the research community, and hinder device improvements by leading to poor designs. This review article seeks to highlight the pros and cons of different measurement techniques used to determine $E_b$, namely, temperature-dependent photoluminescence, resolving Rydberg states, electroabsorption, magnetoabsorption, scanning tunneling spectroscopy, and fitting the optical absorption. Due to numerous conflicting $E_b$ values reported for halide perovskites (HP) and transition metal dichalcogenides (TMDC) monolayers, an emphasis is placed on highlighting these measurements in attempt to reconcile the variance between different measurement techniques. By considering the published data en masse, we argue the experiments with the clearest indicators are in agreement on the following values: ~350 - 450 meV for TMDC monolayers between SiO$_2$ and vacuum, ~150 - 200 meV for hBN-encapsulated TMDC monolayers, ~200 - 300 meV for common lead-iodide 2D HPs, and ~10 meV for methylammonium lead iodide.

    Comment: 80 pages, 24 figures
    Keywords Condensed Matter - Materials Science ; Physics - Chemical Physics
    Subject code 530
    Publishing date 2023-06-24
    Publishing country us
    Document type Book ; Online
    Database BASE - Bielefeld Academic Search Engine (life sciences selection)

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  4. Article: Resolving buried optoelectronic features in metal halide perovskites via modulation spectroscopy studies

    Amerling, Eric / Hansen, Kameron R. / Whittaker-Brooks, Luisa

    Journal of materials chemistry A. 2021 Nov. 2, v. 9, no. 42

    2021  

    Abstract: As research on both bulk and low dimensional metal halide perovskites (MHPs) continues to grow, the tools necessary to gain insights into their exotic and highly convoluted optoelectronic features must also expand. Electroabsorption (EA) is a modulation ... ...

    Abstract As research on both bulk and low dimensional metal halide perovskites (MHPs) continues to grow, the tools necessary to gain insights into their exotic and highly convoluted optoelectronic features must also expand. Electroabsorption (EA) is a modulation spectroscopy technique that is exceptionally valuable at deconvoluting overlapping spectral features as well as discerning between different electronic environments in semiconductors. This review outlines the critical shortcomings of traditional optical spectroscopy in determining essential properties such as the bandgap and exciton binding energy. We provide a brief overview of the working principles of EA, focusing on the differences between bound and unbound charge carriers that result in unique behavior when interacting with an applied electric field. We discuss key studies highlighting the unique characterization available when coupling EA spectroscopy with traditional steady-state optical tools to investigate interesting and complex optical features in MHPs. We conclude that EA is a crucial tool for pushing the boundaries of our understanding of the optoelectronic properties of MHP thin films. When other optical characterization methods fall short in the richness of data provided, EA can bridge the knowledge gap to provide a complete optoelectronic characterization of novel MHPs and deepen the understanding of current structures and compositions as a function of their structural and morphological dimensionality.
    Keywords chemistry ; electric field ; energy ; optical properties ; spectroscopy
    Language English
    Dates of publication 2021-1102
    Size p. 23746-23764.
    Publishing place The Royal Society of Chemistry
    Document type Article
    ZDB-ID 2702232-8
    ISSN 2050-7496 ; 2050-7488
    ISSN (online) 2050-7496
    ISSN 2050-7488
    DOI 10.1039/d1ta06484c
    Database NAL-Catalogue (AGRICOLA)

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  5. Article ; Online: Traversing Excitonic and Ionic Landscapes: Reduced-Dimensionality-Inspired Design of Organometal Halide Semiconductors for Energy Applications.

    Powell, Daniel / Hansen, Kameron R / Flannery, Laura / Whittaker-Brooks, Luisa

    Accounts of chemical research

    2021  Volume 54, Issue 23, Page(s) 4371–4382

    Abstract: At the very heart of the global semiconductor industry lies the omnipresent push for new materials discovery. New materials constantly rise and fall out of fashion in the scientific literature, with those passing an initial phase of research scrutiny ... ...

    Abstract At the very heart of the global semiconductor industry lies the omnipresent push for new materials discovery. New materials constantly rise and fall out of fashion in the scientific literature, with those passing an initial phase of research scrutiny becoming hotbeds of characterization and optimization efforts. Yet, innumerable hours of painstaking research have been devoted to materials that have ultimately fallen by the wayside after crossing over an indefinable threshold, whereupon historical optimism is met with newfound skepticism. Materials have to perform well, and they have to do it quickly. In the past decade, metal-halide perovskites (MHPs) have garnered widespread attention. The hegemonic view in both academic and industrial circles is that these materials could be engineered to meet the demands of the semiconductor industry. Their promise as inexpensive solar cell devices is highly attractive, and it has been nothing short of remarkable that efficiencies have risen from 3.8% in 2009 to more than 25.5% in 2021. Moreover, MHPs are poised to be revolutionary materials in more ways than one. The highest MHP LED efficiency was recently reported (23.4%), and MHPs have demonstrated promise in photodetectors, memristors, and transistors. However, the many excellent properties of MHPs are contrasted by longstanding stability and reproducibility limitations that have hindered their commercialization. Overcoming the limitations of MHPs is ultimately a materials engineering problem, which should be solved by mapping more precise relationships between structure, composition, and device performance. In 1958, Francis Crick famously developed the central dogma of molecular biology which describes the unidirectional flow of information in biological systems. In the words of Crick, "nature has devised a unique instrument in which an underlying simplicity is used to express great subtlety and versatility." In this Account, taking inspiration from the hierarchical organization of nature, we describe a hierarchical approach to materials engineering of organic metal-halide semiconductors. We demonstrate that organo-metal halide semiconductors' dimensionality, composition, and morphology dictate their optoelectronic properties and can be exploited in defining more explicit relationships between structure and function. Here, we traverse three-dimensional (3D), two-dimensional (2D), and one-dimensional (1D) organo-metal halide semiconductors, detailing the morphological and compositional differences in each and the implications that can be drawn within each domain on the engineering process. Control over ion migration pathways via morphology engineering as well as control over charge formation in organic-inorganic semiconductors is demonstrated. Fundamental insights into the amount of static and dynamic disorder in the MHP lattice are provided, which can be continuously tuned as a function of composition and morphology. Using electroabsorption spectroscopy on 2D MHPs, a disorder-induced dipole moment in the exciton proportional to the summed value of static and dynamic disorder is measured. Spectroscopic isolation of exciton features in 2D MHP electroabsorption spectra allows us to obtain precise, model-independent measurements of exciton binding energies to study the effect of chemical substitutions, such as Sn
    Language English
    Publishing date 2021-11-29
    Publishing country United States
    Document type Journal Article ; Research Support, U.S. Gov't, Non-P.H.S. ; Research Support, Non-U.S. Gov't
    ZDB-ID 1483291-4
    ISSN 1520-4898 ; 0001-4842
    ISSN (online) 1520-4898
    ISSN 0001-4842
    DOI 10.1021/acs.accounts.1c00492
    Database MEDical Literature Analysis and Retrieval System OnLINE

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  6. Article: Interplay between Morphology and Electronic Structure in Emergent Organic and π-d Conjugated Organometal Thin Film Materials

    Ogle, Jonathan / Powell, Daniel / Flannery, Laura / Whittaker-Brooks, Luisa

    Industrial & engineering chemistry process design and development. 2021 Oct. 20, v. 60, no. 43

    2021  

    Abstract: The demand for multifunctional devices continues to drive the evolution and parametrization of technology. Simultaneously, the breadth of structural, morphological, and electronic information that can be used to study materials widens and grows in ... ...

    Abstract The demand for multifunctional devices continues to drive the evolution and parametrization of technology. Simultaneously, the breadth of structural, morphological, and electronic information that can be used to study materials widens and grows in complexity. To keep up with the demand for superior technologies in disparate fields, such as energy, electronics, and biotechnology, an unparalleled amount of manpower and financial resources have been devoted to the development of materials that can integrate multiple functionalities, particularly functions that ostensibly exclude one another. To address different functionalities at once, materials have become highly complex and often exhibit multiple structural and morphological phases, hierarchical dependencies, and far-from-equilibrium dynamic structures with little to no long-range atomic ordering. A major area of study that is quickly evolving deals with the quantitative characterization of structure–property–function relationships in complex materials based on π-conjugated organic and organometal systems─particularly in thin film formulations. In this review, we discuss various research avenues where cleverly engineered self-assembly protocols, as well as characterization methods for probing morphology and electronic structure, are implemented to enable the fabrication of well-defined emergent materials.
    Keywords biotechnology ; chemistry ; electronics ; energy ; films (materials) ; process design
    Language English
    Dates of publication 2021-1020
    Size p. 15365-15379.
    Publishing place American Chemical Society
    Document type Article
    ZDB-ID 1484436-9
    ISSN 1520-5045 ; 0888-5885
    ISSN (online) 1520-5045
    ISSN 0888-5885
    DOI 10.1021/acs.iecr.1c03077
    Database NAL-Catalogue (AGRICOLA)

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  7. Article ; Online: Multi-dimensional designer catalysts for negative emissions science (NES): bridging the gap between synthesis, simulations, and analysis.

    Hill, Caleb M / Mendoza-Cortes, Jose L / Velázquez, Jesús M / Whittaker-Brooks, Luisa

    iScience

    2021  Volume 25, Issue 1, Page(s) 103700

    Abstract: Negative emissions technologies will play a critical role in limiting global warming to sustainable levels. Electrocatalytic and/or photocatalytic ... ...

    Abstract Negative emissions technologies will play a critical role in limiting global warming to sustainable levels. Electrocatalytic and/or photocatalytic CO
    Language English
    Publishing date 2021-12-27
    Publishing country United States
    Document type Journal Article ; Review
    ISSN 2589-0042
    ISSN (online) 2589-0042
    DOI 10.1016/j.isci.2021.103700
    Database MEDical Literature Analysis and Retrieval System OnLINE

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  8. Article: Voltage bias stress effects in metal halide perovskites are strongly dependent on morphology and ion migration pathways

    Flannery, Laura / Ogle, Jonathan / Powell, Daniel / Tassone, Christopher / Whittaker-Brooks, Luisa

    Journal of materials chemistry A. 2020 Dec. 15, v. 8, no. 47

    2020  

    Abstract: The solar-to-power power conversion efficiencies (PCEs) of metal halide perovskites (MHP) have improved over the last decade using a wide variety of methods, including composition manipulation, dopant introduction, and interfacial buffers. These methods, ...

    Abstract The solar-to-power power conversion efficiencies (PCEs) of metal halide perovskites (MHP) have improved over the last decade using a wide variety of methods, including composition manipulation, dopant introduction, and interfacial buffers. These methods, however, have taken little regard for the electronic and interfacial effects such alterations may cause within devices under voltage bias stress – a condition required for most device operation. We investigate how halide and cation substitution in MHP structures [specifically, CH₃NH₃PbI₂.₈₇Cl₀.₁₃ and Cs₀.₁(MA₀.₁₇FA₀.₈₃)₀.₉Pb(I₀.₈₃Br₀.₁₇)₃] effects the current behavior of devices while under a range of voltage bias stress in both light and dark conditions. Conducting in depth investigations into the electronic and morphological differences between these two MHP devices, we confirmed their unique voltage bias stress effects are due to intrinsic behavior within the perovskite structure. Importantly, we also determined how crystallite orientation can influence ion migration and therefore alter charge transport and current stability in MHP photovoltaic devices.
    Keywords cations ; crystallites ; electric potential difference
    Language English
    Dates of publication 2020-1215
    Size p. 25109-25119.
    Publishing place The Royal Society of Chemistry
    Document type Article
    Note NAL-AP-2-clean
    ZDB-ID 2702232-8
    ISSN 2050-7496 ; 2050-7488
    ISSN (online) 2050-7496
    ISSN 2050-7488
    DOI 10.1039/d0ta10371c
    Database NAL-Catalogue (AGRICOLA)

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  9. Article ; Online: Rashba splitting in organic-inorganic lead-halide perovskites revealed through two-photon absorption spectroscopy.

    Lafalce, Evan / Amerling, Eric / Yu, Zhi-Gang / Sercel, Peter C / Whittaker-Brooks, Luisa / Vardeny, Z Valy

    Nature communications

    2022  Volume 13, Issue 1, Page(s) 483

    Abstract: The Rashba splitting in hybrid organic-inorganic lead-halide perovskites (HOIP) is particularly promising and yet controversial, due to questions surrounding the presence or absence of inversion symmetry. Here we utilize two-photon absorption ... ...

    Abstract The Rashba splitting in hybrid organic-inorganic lead-halide perovskites (HOIP) is particularly promising and yet controversial, due to questions surrounding the presence or absence of inversion symmetry. Here we utilize two-photon absorption spectroscopy to study inversion symmetry breaking in different phases of these materials. This is an all-optical technique to observe and quantify the Rashba effect as it probes the bulk of the materials. In particular, we measure two-photon excitation spectra of the photoluminescence in 2D, 3D, and anionic mixed HOIP crystals, and show that an additional band above, but close to the optical gap is the signature of new two-photon transition channels that originate from the Rashba splitting. The inversion symmetry breaking is believed to arise from ionic impurities that induce local electric fields. The observation of the Rashba splitting in the bulk of HOIP has significant implications for the understanding of their spintronic and optoelectronic device properties.
    Language English
    Publishing date 2022-01-25
    Publishing country England
    Document type Journal Article
    ZDB-ID 2553671-0
    ISSN 2041-1723 ; 2041-1723
    ISSN (online) 2041-1723
    ISSN 2041-1723
    DOI 10.1038/s41467-022-28127-9
    Database MEDical Literature Analysis and Retrieval System OnLINE

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  10. Article ; Online: Quantifying Exciton Heterogeneities in Mixed-Phase Organometal Halide Multiple Quantum Wells via Stark Spectroscopy Studies.

    Amerling, Eric / Baniya, Sangita / Lafalce, Evan / Blair, Steve / Vardeny, Zeev Valy / Whittaker-Brooks, Luisa

    ACS applied materials & interfaces

    2020  Volume 12, Issue 47, Page(s) 52538–52548

    Abstract: Solution-processable two-dimensional (2D) organic-inorganic hybrid perovskite (OIHP) quantum wells naturally self-assemble through weak van der Waals forces. In this study, we investigate the structural and optoelectronic properties of 2D-layered ... ...

    Abstract Solution-processable two-dimensional (2D) organic-inorganic hybrid perovskite (OIHP) quantum wells naturally self-assemble through weak van der Waals forces. In this study, we investigate the structural and optoelectronic properties of 2D-layered butylammonium (C
    Language English
    Publishing date 2020-11-12
    Publishing country United States
    Document type Journal Article
    ISSN 1944-8252
    ISSN (online) 1944-8252
    DOI 10.1021/acsami.0c13564
    Database MEDical Literature Analysis and Retrieval System OnLINE

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