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Laixiang Qin

Publications and source records attributed to Laixiang Qin.

3 recordsLinked to original sources

Boosting Perovskite Light-Emitting Diodes Performance by Introducing High Work-function Metal Transition Layer

We investigated the impact of the anode's work-function on the performance of an all inorganic PeLED device which was hailed for stability and long lifetime with drift-diffusion and Poisson equations embedded as a computation package in Setfos, a commercially professional software to emulate LED. According to the simulation results, a conclusion that a thin high work-function metal layer inserted between indium tin oxide (ITO) and hole transport layer of nickel oxide (NiOx) substantially facilitated hole injection by decrementing the hole injection barrier. 2 nm thick gold (Au) had been checked and dramatically enhanced luminance intensity by more than 18 fold times had been attained. The situation went for other high work function metals like Pd and Pt as well. Our high work-function thin metal layers decorating anodes in PeLED in facilitating hole injection unfolds a new trajectory towards efficiently boosting PeLED luminance with a technique that is compatible with large scale fabrication process.

physics.app-ph

Drive Current Boost in Double-Channeled Nanotube Gate all Around Field Effect Transistor

We demonstrate an exotic doubled-channeled NT GAAFET (DC NT GAAFET) structure with Ion boost in comparison with NT GAAFET and NW GAAFET with the same footprint. Ion gains of 64.8% and 1.7 times have been obtained in DC NT GAAFET in compared with NT GAAFET and NW GAAFET. Ioff of DC NT GAAFET degrades by 61.8% than that of NT GAAFET, SS is almost comparable in two kinds of device structures, whereas Ion/Ioff ratio in DC NT GAAFET still gains subtly, by 2.4%, than NT GAAFET thanks to the substantial Ion aggrandizement, indicating the sustained superior gate electrostatic controllability in DC NT GAAFET with regarding to NT GAAFET regardless of additional channel incorporated. On the other side, both DC NT GAAFET and NT GAAFET exhibit superior device performance than NW GAAFET in terms of high operation speed and better electrostatic controllability manifested by suppressed SCEs.

physics.app-ph

Gate Electrostatic Controllability Enhancement in Nanotube Gate all Around Field Effect Transistor

Recently, short channel effects (SCE) and power consumption dissipation problems pose big challenges which need imperative actions to be taken to deal with for field effect transistor to further scale down as semiconductor technology enters into sub-10nm technology node. From 3nm technology node and beyond, gate all around field effect transistor steps onto the history stage attributed to its improved SCE suppressing ability thanks to surrounding gate structure. Herein, we demonstrate the super electrostatic control ability of a double-gated nanotube gate all around field effect transistor (DG NT GAAFET) in comparison with nanotube (NT GAAFET) and nanowire gate all around field effect transistor (NW GAAFET) with the same device parameters designed. Ion boosts of 62% and 57% have been obtained in DG NT GAAFET in comparison with those of NT GAAFET and NW GAAFET. Besides, substantially suppressed SCEs have been obtained in DG NT GAAFET due to enhanced electrostatic control, which are certificated by improved Ioff, SS, and Ion/Ioff ratio obtained. On the other hand, the Ion of NT GAAFET is comparable with that of NW GAA-FET. Whereas, its Ioff is 1 order smaller, and SS is almost 2 times smaller compared with those of NW GAA-FET, manifesting the meliority of nanotube channel structure. In the end, the robustness of nanotube channel structure, especially double gated one, against Lg scaling has been verified with TCAD simulation study.

physics.app-ph