Dong Li, Cong Peng, Meng Xu, Molin Shen, Jinxia Cai, Wanting Wu, Xiaoyue Pan, Ruyu Zou, Longlong Chen, Huanli Dong, Jun Li, Xifeng Li, Jianhua Zhang
Simultaneously balancing high mobility and ultra-low leakage current is a major challenge for metal-oxide thin-film transistors (TFTs) in ultra-low-power applications. Herein, we construct a high-performance InGaZnO/InGaO/InGaZnO tri-layer TFT based on a noncoplanar Schottky-Ohmic hybrid contact architecture. Remarkably, despite utilizing identical ITO electrodes, differential interfacial engineering explicitly decouples carrier transport: the bottom interface forms a 670 meV Schottky barrier to strictly suppress off-state leakage, while the top interface ensures low-resistance Ohmic extraction. Furthermore, a deep quantum potential well (ΔEc = 0.20 eV) formed between the high-impedance InGaZnO cladding layers and the highly conductive InGaO core strongly localizes carriers within the inner layer, constructing an ultra-low-scattering two-dimensional transport pathway. The device achieves an ultrahigh on/off current ratio exceeding 1010, together with a high field-effect mobility of 28 cm2/V s and a steep subthreshold swing of 120 mV/dec. The TFT also exhibits excellent bias stability, with a VTH shift of only 0.8 V under ± 20 V gate stress for 3600 s. Unipolar depletion-load inverters based on this architecture deliver full-swing operation and a maximum voltage gain of 55. These findings establish noncoplanar Schottky-Ohmic contacts as a powerful strategy to break the long-standing mobility-leakage trade-off, offering a scalable pathway toward low-power, high-performance oxide electronics for advanced display backplanes and large-area integrated circuits.