Achieving Extreme Solubility and Green Solvent-Processed Organic Field-Effect Transistors: A Viable Asymmetric Functionalization of [1]Benzothieno[3,2- b ][1]benzothiophenes

表面改性 材料科学 溶解度 溶剂 有机溶剂 晶体管 纳米技术 有机化学 化学工程 化学 量子力学 物理 工程类 电压
作者
Tevhide Ayça Yıldız,İbrahim Deneme,Hakan Usta
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (35): 49720-49736 被引量:1
标识
DOI:10.1021/acsami.5c12618
摘要

High Resolution Image Download MS PowerPoint Slide Novel structural engineering strategies for solubilizing high-mobility semiconductors are critical, which enables green solvent processing for eco-friendly, sustainable device fabrication, and unique molecular properties. Here, we introduce a viable asymmetric functionalization approach, synthesizing monocarbonyl [1]benzothieno[3,2- b ][1]benzothiophene molecules on a gram scale in two transition-metal-free steps. An unprecedented solubility of up to 176.0 mg·mL –1 (at room temperature) is achieved, which is the highest reported to date for a high-performance organic semiconductor. The single-crystal structural analysis reveals a herringbone motif with multiple edge-to-face interactions and nonclassical hydrogen bonds involving the carbonyl unit. The asymmetric backbones adopt an antiparallel arrangement, enabling face-to-face π-π interactions. The mono(alkyl-aryl)carbonyl-BTBT compound, m -C 6 PhCO-BTBT enables formulations in varied green solvents, including acetone and ethanol, all achieving p -channel top-contact/bottom-gate OFETs in ambient conditions. Charge carrier mobilities of up to 1.87 cm 2 /V·s (μ eff ≈ 0.4 cm 2 /V·s; I on /I off ≈ 10 7 –10 8 ) were achieved. To the best of our knowledge, this is one of the highest OFET performances achieved using a green solvent. Hansen solubility parameters (HSP) analysis, combined with Scatchard–Hildebrand regular solution theory and single-crystal packing analysis, elucidates this exceptional solubility and reveals unique relationships between molecular structure, interaction energy densities, cohesive energetics, and solute–solvent distances ( R a ). An optimal solute–green solvent interaction distance in HSP space proves critical for green solvent-processed thin-film properties. This asymmetric functionalization approach, with demonstrated unique solubility insights, provides a foundation for designing green solvent-processable π-conjugated systems, potentially advancing innovation in sustainable (opto)electronics and bioelectronics.

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