Composition-Driven Tunable Optical and Electrical Properties in Van der Waals Ferroelectric NbOI2-xClx Alloys
Gaolei Zhao, Juhe Liu, Jinkai Huo, Tian Han, Yunhao Tong, Hu Wang, Konstantin Kozadaev, Andrei Zheltkovich, Changsen Sun, Alexei Tolstik, Andrey Novitsky, Lujun Pan, Dawei Li

TL;DR
This paper demonstrates the controlled fabrication and characterization of NbOI2-xClx van der Waals ferroelectric alloys with composition-tunable optical and electrical properties for advanced nanoelectronics and optoelectronics.
Contribution
It introduces a chemical vapor transport method to produce NbOI2-xClx alloys with adjustable properties, supported by experimental and theoretical analysis.
Findings
Optical second harmonic generation signals are composition-dependent.
Field-effect transistors show tunable threshold voltage and mobility.
Photodetectors exhibit gate-tunable on/off ratio and polarization sensitivity.
Abstract
Layered niobium oxide dihalides NbOX2 (X = I, Cl), as a new family of Van der Waals (vdW) ferroelectrics, have attracted extensive attention, while achieving non-volatile modulation of their optical and electrical properties remains challenging, thereby limiting their integration into next-generation nanoelectronics and optoelectronics. Here, we report the controlled fabrication of highly crystalline NbOI2-xClx vdW alloys with composition-driven tunable optical and electrical properties via a chemical vapor transport method. Comprehensive experimental characterization combined with first-principles calculation shows that the crystal lattices, phonon modes, and band structures of NbOI2-xClx can be well tailored, which are distributed between NbOI2 and NbOCl2. Both the amplitude and polarization of second harmonic generation optical signal in NbOI2-xClx exhibit pronounced compositional…
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