Covalent Bond Torsion-Enabled Unique Crystal-Phase Transformation of an Organic Semiconductor for Multicolor Light-Emitting Transistors.

ACS Appl Mater Interfaces

Key Laboratory of Organic Integrated Circuit, Ministry of Education & Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) & Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, Tianjin University, Tianjin 300072, China.

Published: July 2024

AI Article Synopsis

  • The research discusses an innovative strategy for creating high-performance organic semiconductors (OSCs) that can achieve both high mobility and color-tunable emission without compromising efficiency.
  • The compound 2,7-di(anthracen-2-yl) naphthalene (2,7-DAN) exhibits unique crystalline polymorphism due to slight variations in molecular conformation, allowing it to change emission color from blue to green.
  • With a carrier mobility of 17 cm V s, the findings pave the way for developing advanced multifunctional OSCs for future optoelectronic applications, such as light-emitting transistors.

Article Abstract

High-mobility and color-tunable highly emissive organic semiconductors (OSCs) are highly promising for various optoelectronic device applications and novel structure-property relationship investigations. However, such OSCs have never been reported because of the great trade-off between mobility, emission color, and emission efficiency. Here, we report a novel strategy of molecular conformation-induced unique crystalline polymorphism to realize the high mobility and color-tunable high emission in a novel OSC, 2,7-di(anthracen-2-yl) naphthalene (2,7-DAN). Interestingly, 2,7-DAN has unique crystalline polymorphism, which has an almost identical packing motif but slightly different molecular conformation enabled by the small bond rotation angle variation between anthracene and naphthalene units. More remarkably, the subtle covalent bond rotation angle change leads to a big change in color emission (from blue to green) but does not significantly modify the mobility and emission efficiency. The carrier mobility of 2,7-DAN crystals can reach up to a reliable 17 cm V s, which is rare for the reported high-mobility OSCs. Based on the unique phenomenon, high-performance light-emitting transistors with blue to green emission are simultaneously demonstrated in an OSC crystal. These results open a new way for designing emerging multifunctional organic semiconductors toward next-generation advanced molecular (atomic)-scale optoelectronics devices.

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Source
http://dx.doi.org/10.1021/acsami.4c05219DOI Listing

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