Paper published in ACS Applied Materials & Interfaces

ACS Appl. Mater. Interfaces 2026, 18, 14, 20799–20808

Interfacial Siloxane Interactions to Enhance Semiconductor Ordering and Performance in Organic Thin Film Transistors

Laura E. Dickson, Hyungjun Cho, Nicolas Ledos, Vittoria-Ann DiPalo, Kannan Udaya Mohanan, Joseph G. Manion, Kamatham Narayanaswamy, Stéphane Méry, Nicolas Leclerc, Chang-Hyun Kim, Benoît H. Lessard, 

Achieving low-power, high-mobility organic thin-film transistors requires control over the buried interface between the semiconductor and the dielectric layers. Here, we demonstrate that siloxane-based molecular design provides a powerful means of engineering interfacial compatibility and charge transport. By integrating siloxane-functionalized diketopyrrolopyrrole (DPP) semiconductors with a PDMS-based polyionic liquid (PIL) dielectric, we show that siloxane–siloxane interactions promote enhanced molecular ordering, increased crystal coherence, and improved charge-carrier mobility of the semiconductor. Grazing-incidence wide-angle X-ray scattering and Raman morphological analyses indicate that interfacial interactions drive coherent stacking and reduce the level of disorder at the interface. This interfacial design strategy offers a general approach to tuning interfaces through conjugated polymer/dielectric systems, offering insight into strategies for the development of low-voltage, high-performance organic electronics.