A Novel Design of Quasi-Lightly Doped Drain Poly-Si Thin-Film Transistors for Suppression of Kink and Gate-Induced Drain Leakage Current
Jae Hyo Park, Ki Hwan Seok, Hyung Yoon Kim, Hee Jae Chae, Sol Kyu Lee, Seung Ki Joo
Abstract
Jae Hyo Park, Ki Hwan Seok, Hyung Yoon Kim, Hee Jae Chae, Sol Kyu Lee, Seung Ki Joo
Abstract
An ultrathin channel of poly-Si thin-film transistors with a quasi-lightly doped drain (Q-LDD) structure, which reduces the kink current considerably, have been proposed and fabricated. The doping concentration on the poly-Si channel was adjusted by the different thickness between source-drain and LDD region. The proposed Q-LDD shows advantages of using a thin channel and a thin-gate insulator, comparing with the conventional fabrication process of LDD using a thick oxide side walls. The gate-induced drain leakage currents were successfully suppressed without sacrifice of the ON-current and threshold voltage. Moreover, the kink effect also reduced.
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An ultrathin channel of poly-Si thin-film transistors with a quasi-lightly doped drain (Q-LDD) structure, which reduces the kink current considerably, have been proposed and fabricated. The doping concentration on the poly-Si channel was adjusted by the different thickness between source-drain and LDD region. The proposed Q-LDD shows advantages of using a thin channel and a thin-gate insulator, comparing with the conventional fabrication process of LDD using a thick oxide side walls. The gate-induced drain leakage currents were successfully suppressed without sacrifice of the ON-current and threshold voltage. Moreover, the kink effect also reduced.
Key concepts: Materials science, Doping, Optoelectronics, Fabrication, Leakage (economics), Transistor, Thin-film transistor, Threshold voltage