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Packing and Disorder in Substituted Fullerenes
Author(s) -
Naga Rajesh Tummala,
Shaaban A. Elroby,
Saadullah G. Aziz,
Chad Risko,
Veaceslav Coropceanu,
JeanLuc Brédas
Publication year - 2016
Publication title -
the journal of physical chemistry c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.401
H-Index - 289
eISSN - 1932-7455
pISSN - 1932-7447
DOI - 10.1021/acs.jpcc.6b05197
Subject(s) - fullerene , materials science , organic solar cell , solubility , density functional theory , molecule , acceptor , molecular dynamics , computational chemistry , chemical physics , indene , nanotechnology , chemistry , organic chemistry , polymer , composite material , physics , condensed matter physics
Fullerenes are ubiquitous as electron-acceptor and electron-transport materials in organic solar cells. Recent synthetic strategies to improve the solubility and electronic characteristics of these molecules have translated into a tremendous increase in the variety of derivatives employed in these applications. Here, we use molecular dynamics (MD) simulations to examine the impact of going from mono-adducts to bis- and tris-adducts on the structural, cohesive, and packing characteristics of [6,6]-phenyl-C60-butyric acid methyl ester (PCBM) and indene-C60. The packing configurations obtained at the MD level then serve as input for density functional theory calculations that examine the solid-state energetic disorder (distribution of site energies) as a function of chemical substitution. The variations in structural and site-energy disorders reflect the fundamental materials differences among the derivatives and impact the performance of these materials in thin-film electronic devices

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