The WSPC Reference on Organic Electronics: Organic Semiconductors. Materials and Energy Series. Volume 1: Basic Concepts, Volume 2: Fundamental Aspects of Materials and Applications. Edited by Jean-Luc Brédas and Seth R. Marder.

2017 ◽  
Vol 56 (18) ◽  
pp. 4915-4916
Author(s):  
Enrico Da Como ◽  
Elizabeth von Hauff
2020 ◽  
pp. 3-30
Author(s):  
Stephen R. Forrest

Basic concepts and opportunities that define the field of organic electronics and organic electronic materials are presented. This is followed by a brief history of the field that is marked by major advances over the last 70 years in our understanding of carbon-rich, disordered, soft organic semiconductors, and their widespread application to devices. A discussion is provided of common language and the introduction of important classes of both polymeric and small molecular weight organic materials to be used throughout the book. Finally, a list of common myths that have surrounded the field of organic electronics is provided, along with a brief discussion of the differences between these myths and the reality that is the subject of the text.


Author(s):  
Jenna L Sartucci ◽  
Arindam Maity ◽  
Manikandan Mohanan ◽  
Jeffery A. Bertke ◽  
Miklos Kertesz ◽  
...  

Understanding the doping mechanism in organic semiconductors and generating molecular design rules to control the doping process is crucial to improve the performance of organic electronics. Even though controlling the...


2016 ◽  
Vol 6 (2) ◽  
pp. 120-138 ◽  
Author(s):  
Alessandra Operamolla ◽  
Angela Punzi ◽  
Gianluca M. Farinola

2019 ◽  
Vol 31 (43) ◽  
pp. 1970308
Author(s):  
Hirohiko Fukagawa ◽  
Munehiro Hasegawa ◽  
Katsuyuki Morii ◽  
Kazuma Suzuki ◽  
Tsubasa Sasaki ◽  
...  

2020 ◽  
Vol 117 (34) ◽  
pp. 20397-20403
Author(s):  
Dong Meng ◽  
Jonathan Lee Yang ◽  
Chengyi Xiao ◽  
Rui Wang ◽  
Xiaofei Xing ◽  
...  

Organic frameworks (OFs) offer a novel strategy for assembling organic semiconductors into robust networks that facilitate transport, especially the covalent organic frameworks (COFs). However, poor electrical conductivity through covalent bonds and insolubility of COFs limit their practical applications in organic electronics. It is known that the two-dimensional intralayer π∙∙∙π transfer dominates transport in organic semiconductors. However, because of extremely labile inherent features of noncovalent π∙∙∙π interaction, direct construction of robust frameworks via noncovalent π∙∙∙π interaction is a difficult task. Toward this goal, we report a robust noncovalent π∙∙∙π interaction-stacked organic framework, namely πOF, consisting of a permanent three-dimensional porous structure that is held together by pure intralayer noncovalent π∙∙∙π interactions. The elaborate porous structure, with a 1.69-nm supramaximal micropore, is composed of fully conjugated rigid aromatic tetragonal-disphenoid-shaped molecules with four identical platforms. πOF shows excellent thermostability and high recyclability and exhibits self-healing properties by which the parent porosity is recovered upon solvent annealing at room temperature. Taking advantage of the long-range π∙∙∙π interaction, we demonstrate remarkable transport properties of πOF in an organic-field-effect transistor, and the mobility displays relative superiority over the traditional COFs. These promising results position πOF in a direction toward porous and yet conductive materials for high-performance organic electronics.


Author(s):  
I. Bergenti ◽  
V. Dediu ◽  
M. Prezioso ◽  
A. Riminucci

Organic semiconductors are emerging materials in the field of spintronics. Successful achievements include their use as a tunnel barrier in magnetoresistive tunnelling devices and as a medium for spin-polarized current in transport devices. In this paper, we give an overview of the basic concepts of spin transport in organic semiconductors and present the results obtained in the field, highlighting the open questions that have to be addressed in order to improve devices performance and reproducibility. The most challenging perspectives will be discussed and a possible evolution of organic spin devices featuring multi-functional operation is presented.


2010 ◽  
Vol 22 (34) ◽  
pp. 3876-3892 ◽  
Author(s):  
John E. Anthony ◽  
Antonio Facchetti ◽  
Martin Heeney ◽  
Seth R. Marder ◽  
Xiaowei Zhan

2003 ◽  
Vol 769 ◽  
Author(s):  
Antonio Facchetti ◽  
Myung-Han Yoon ◽  
Howard E. Katz ◽  
Melissa Mushrush ◽  
Tobin J. Marks

AbstractOrganic semiconductors exhibiting complementary-type carrier mobility are the key components for the development of the field of “plastic electronics”. We present here a novel series of αω- and isomerically pure β,β'-diperfluorohexyl-substituted thiophene and study the impact of fluoroalkyl substitution and conjugation length vìs-à-vìs the corresponding fluorinefree analogues. Trends between the fluorinated and fluorine-free families in molecular packing, HOMO-LUMO gap, and π-π interactions are found to be strikingly similar. TFT measurements indicate that all members of the fluorinated series are n-type semiconductors


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