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Full-Text Articles in Materials Chemistry

Data For Dopant-Induced Energetic Disorder In Conjugated Polymers: Determinant Roles Of Polymer-Dopant Distance And Composite Electronic Structures, Michael Lu Diaz, Muhamed Duhandzic, Simon Harrity, Subhayan Samanta, Zlatan Aksamija, Dhandapani Venkataraman Jan 2024

Data For Dopant-Induced Energetic Disorder In Conjugated Polymers: Determinant Roles Of Polymer-Dopant Distance And Composite Electronic Structures, Michael Lu Diaz, Muhamed Duhandzic, Simon Harrity, Subhayan Samanta, Zlatan Aksamija, Dhandapani Venkataraman

Data and Datasets

The data here is the raw data for Figures in the publication "Dopant-Induced Energetic Disorder in Conjugated Polymers: Determinant Roles of Polymer−Dopant Distance and Composite Electronic Structures" In the Journal of Physical Chemistry C. (https://doi.org/10.1021/acs.jpcc.3c07197)


Source Data For Self-Spinning Filaments For Autonomously Linked Microfibers, Dylan M. Barber, Todd S. Emrick, Gregory Grason, Alfred Crosby Jan 2022

Source Data For Self-Spinning Filaments For Autonomously Linked Microfibers, Dylan M. Barber, Todd S. Emrick, Gregory Grason, Alfred Crosby

Data and Datasets

Filamentous bundles are ubiquitous in Nature, achieving highly adaptive functions and structural integrity from assembly of diverse mesoscale supramolecular elements. Engineering routes to synthetic, topologically integrated analogs demands precisely coordinated control of multiple filaments’ shapes and positions, a major challenge when performed without complex machinery or labor-intensive processing. Here, we demonstrate a photocreasing design that encodes local curvature and twist into mesoscale polymer filaments, enabling their programmed transformation into target 3-dimensional geometries. Importantly, patterned photocreasing of filament arrays drives autonomous spinning to form linked filament bundles that are highly entangled and structurally robust. In individual filaments, photocreases unlock paths 16 …