1,720,957 research outputs found
Advanced Dispersion-Corrected DFT Studies on Structural, Energetic, and Electronic Properties of Low-Dimensional Materials
This thesis investigates the structural, energetic, and electronic properties of two-dimensional (2D) materials, focusing on graphene, hexagonal boron nitride (hBN), transition metal dichalcogenides (TMDCs), and arsenic phosphide (AsP) bilayers, using dispersion-corrected density functional theory (DFT) and random Phase Approximation (RPA). Central to our analysis is the use of dispersion-corrected DFT methods, particularly the SCAN-rVV10 and PBE-rVV10L functionals, to accurately predict interlayer distances, interaction energies, and electronic properties. We assess these properties across a wide range of 2D materials in both homogeneous and heterostructured forms.
This thesis demonstrates the effectiveness of standard DFT methods in predicting intralayer properties like bond lengths and lattice constants. However, it is the advanced London dispersion-corrected functionals, such as SCAN-rVV10, that are particularly effective in detailing interlayer distances and interactions. These interlayer phenomena are crucial for accurate material characterization and application. For instance, in homogeneous and heterostructured layered systems, SCAN-rVV10 accurately predicts interlayer distances and interaction energetics, aligning closely with experimental and higher-level theoretical RPA results.
Moreover, in studying binding behavior, particularly for {Mo,Ti}S2 nanostructures interacting with organic molecules, we illustrate how molecular orientation and surface structure influence binding characteristics. This research emphasizes that molecule interactions at edge and basal plane sites are crucial for controlling the shape and growth of these nanostructures. Molecules often bind more strongly to edge sites, promoting edge passivation and vertical stacking, while basal plane interactions, especially with thiophene, favor lateral growth.
In conclusion, this thesis not only advances our understanding of the fundamental properties of 2D materials but also provides crucial insights into the accuracy of DFT methods in predicting these properties. By identifying the strengths and limitations of different dispersion-corrected DFT methods, we open the way for more accurate computational research and practical applications of these materials. This comprehensive analysis bridges theoretical predictions with potential industrial applications, underscoring the transformative impact of 2D materials in science and technology
Advanced Dispersion-Corrected DFT Studies on Structural, Energetic, and Electronic Properties of Low-Dimensional Materials
This thesis investigates the structural, energetic, and electronic properties of two-dimensional (2D) materials, focusing on graphene, hexagonal boron nitride (hBN), transition metal dichalcogenides (TMDCs), and arsenic phosphide (AsP) bilayers, using dispersion-corrected density functional theory (DFT) and random Phase Approximation (RPA). Central to our analysis is the use of dispersion-corrected DFT methods, particularly the SCAN-rVV10 and PBE-rVV10L functionals, to accurately predict interlayer distances, interaction energies, and electronic properties. We assess these properties across a wide range of 2D materials in both homogeneous and heterostructured forms.
This thesis demonstrates the effectiveness of standard DFT methods in predicting intralayer properties like bond lengths and lattice constants. However, it is the advanced London dispersion-corrected functionals, such as SCAN-rVV10, that are particularly effective in detailing interlayer distances and interactions. These interlayer phenomena are crucial for accurate material characterization and application. For instance, in homogeneous and heterostructured layered systems, SCAN-rVV10 accurately predicts interlayer distances and interaction energetics, aligning closely with experimental and higher-level theoretical RPA results.
Moreover, in studying binding behavior, particularly for {Mo,Ti}S2 nanostructures interacting with organic molecules, we illustrate how molecular orientation and surface structure influence binding characteristics. This research emphasizes that molecule interactions at edge and basal plane sites are crucial for controlling the shape and growth of these nanostructures. Molecules often bind more strongly to edge sites, promoting edge passivation and vertical stacking, while basal plane interactions, especially with thiophene, favor lateral growth.
In conclusion, this thesis not only advances our understanding of the fundamental properties of 2D materials but also provides crucial insights into the accuracy of DFT methods in predicting these properties. By identifying the strengths and limitations of different dispersion-corrected DFT methods, we open the way for more accurate computational research and practical applications of these materials. This comprehensive analysis bridges theoretical predictions with potential industrial applications, underscoring the transformative impact of 2D materials in science and technology
Advanced Dispersion-Corrected DFT Studies on Structural, Energetic, and Electronic Properties of Low-Dimensional Materials
This thesis investigates the structural, energetic, and electronic properties of two-dimensional (2D) materials, focusing on graphene, hexagonal boron nitride (hBN), transition metal dichalcogenides (TMDCs), and arsenic phosphide (AsP) bilayers, using dispersion-corrected density functional theory (DFT) and random Phase Approximation (RPA). Central to our analysis is the use of dispersion-corrected DFT methods, particularly the SCAN-rVV10 and PBE-rVV10L functionals, to accurately predict interlayer distances, interaction energies, and electronic properties. We assess these properties across a wide range of 2D materials in both homogeneous and heterostructured forms.
This thesis demonstrates the effectiveness of standard DFT methods in predicting intralayer properties like bond lengths and lattice constants. However, it is the advanced London dispersion-corrected functionals, such as SCAN-rVV10, that are particularly effective in detailing interlayer distances and interactions. These interlayer phenomena are crucial for accurate material characterization and application. For instance, in homogeneous and heterostructured layered systems, SCAN-rVV10 accurately predicts interlayer distances and interaction energetics, aligning closely with experimental and higher-level theoretical RPA results.
Moreover, in studying binding behavior, particularly for {Mo,Ti}S2 nanostructures interacting with organic molecules, we illustrate how molecular orientation and surface structure influence binding characteristics. This research emphasizes that molecule interactions at edge and basal plane sites are crucial for controlling the shape and growth of these nanostructures. Molecules often bind more strongly to edge sites, promoting edge passivation and vertical stacking, while basal plane interactions, especially with thiophene, favor lateral growth.
In conclusion, this thesis not only advances our understanding of the fundamental properties of 2D materials but also provides crucial insights into the accuracy of DFT methods in predicting these properties. By identifying the strengths and limitations of different dispersion-corrected DFT methods, we open the way for more accurate computational research and practical applications of these materials. This comprehensive analysis bridges theoretical predictions with potential industrial applications, underscoring the transformative impact of 2D materials in science and technology
Going Beyond Counting First Authors in Author Co-citation Analysis
The present study examines one of the fundamental aspects of author co-citation analysis (ACA) - the way co-citation
counts are defined. Co-citation counting provides the data on which all subsequent statistical analyses and mappings
are based, and we compare ACA results based on two different types of co-citation counting - the traditional type that
only counts the first one among a cited work's authors on the one hand and a non-traditional type that takes into
account the first 5 authors of a cited work on the other hand. Results indicate that the picture produced through this non-traditional author co-citation counting contains more coherent author groups and is therefore considerably clearer. However, this picture represents fewer specialties in the research field being studied than that produced through the traditional first-author co-citation counting when the same number of top-ranked authors is selected and analyzed. Reasons for these effects are discussed
Variations on the Author
“Variations on the Author” discusses two of Eduardo Coutinho’s recent films (Um Dia na Vida, from 2010, and Últimas Conversas, posthumously released in 2015) and their contribution to the general question of documentary authorship. The director’s filmography is characterized by a consistent yet self-effacing form of authorial self-inscription: Coutinho often features as an interviewer that rather than express opinions propels discourses; an interviewer that is good at listening. This mode of self-inscription characterizes him as an author who is not expressive but who is nonetheless markedly present on the screen. In Um Dia na Vida, however, Coutinho is completely absent form the image, while Últimas Conversas, on the contrary, includes a confessional prologue that moves the director from the margins to the center of his films. This article examines the ways in which these works stand out in the filmography of a director who offers new insights into the notion of cinematic authorship
Appropriate Similarity Measures for Author Cocitation Analysis
We provide a number of new insights into the methodological discussion about author cocitation analysis. We first argue that the use of the Pearson correlation for measuring the similarity between authors’ cocitation profiles is not very satisfactory. We then discuss what kind of similarity measures may be used as an alternative to the Pearson correlation. We consider three similarity measures in particular. One is the well-known cosine. The other two similarity measures have not been used before in the bibliometric literature. Finally, we show by means of an example that our findings have a high practical relevance.information science;Pearson correlation;cosine;similarity measure;author cocitation analysis
Dispelling the Myths Behind First-author Citation Counts
We conducted a full-scale evaluative citation analysis study of scholars in the XML research field to explore just how different from each other author rankings resulting from different citation counting methods actually are, and to demonstrate the capability of emerging data and tools on the Web in supporting more realistic citation counting methods. Our results contest some common arguments for the continued
use of first-author citation counts in the evaluation of scholars, such as high correlations between author rankings by first-author citation counts and other citation
counting methods, and high costs of using more realistic citation counting methods that are not well-supported by the ISI databases. It is argued that increasingly available digital full text research papers make it possible for citation analysis studies to go beyond what the ISI databases have directly supported and to employ more
sophisticated methods
koamabayili/VECTRON-author-checklist: VECTRON author checklist
We have done our best to complete the author checklist relating to the use of animals in the hut study. Note that the objective for the hut study was to evaluate the IRS treatment applications for residual efficacy against Anopheles mosquitoes, including the local An. coluzzii mosquito population. Cows were only used to attract mosquitoes into the huts and no tests were carried out directly on the cows. The author checklist is intended for use with studies where experiments are carried out on animals, which is why we have had such difficulty in completing this for the hut study, as many of the questions do not relate to how the cows were used
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