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Haihui Cai

Publications and source records attributed to Haihui Cai.

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Mobile charges in MoS2/high-k oxide transistors: from abnormal instabilities to memory-like dynamics

MoS$_2$ field-effect transistors (FETs) with high-\textit{k} oxides currently lag behind silicon standards in bias and temperature stability due to ubiquitous border oxide traps that cause clockwise (CW) hysteresis in gate transfer characteristics. While suppressing this effect is typically mandatory for logic FETs, here we explore an alternative strategy where the initial CW hysteresis can be dynamically overcome by stronger counterclockwise (CCW) hysteresis towards memory-like dynamics. We systematically compare hysteresis in similar back-gated MoS$_2$/HfO$_2$ and MoS$_2$/Al$_2$O$_3$ FETs up to 275\textdegree C. At room temperature, both devices initially show sizable CW hysteresis. However, at 175\textdegree C MoS$_2$/HfO$_2$ FETs exhibit dominant CCW dynamics coupled with self-doping and negative differential resistance (NDR) effects. Our compact model suggests that this behavior is caused by the drift of mobile oxygen vacancies (\textit{V}\({}_{\mathrm{O}}^{+}\) or \textit{V}\({}_{\mathrm{O}}^{2+}\)) within HfO$_2$ which also causes negative $V_{\mathrm{th}}$ shift under a constant positive bias stress. This alternative mechanism effectively overrides the initial CW hysteresis and enables intrinsic memory functionality that can be enhanced by using narrower gate bias sweep ranges. In contrast, the MoS$_2$/Al$_2$O$_3$ FETs display only minor CCW dynamics even at 275\textdegree C due to higher drift activation energies for the same vacancies, thereby maintaining superior stability. Our results reveal an insulators selection paradigm: Al$_2$O$_3$ layers are better suited to suppress detrimental negative $V_{\mathrm{th}}$ shifts in MoS$_2$ logic FETs at high temperatures, whereas their HfO$_2$ counterparts can serve as active memory layers that would exploit these abnormal instabilities.

cond-mat.mtrl-sci

Mapping diverse hysteresis dynamics in scaled MoS$_2$ FETs using the universal method derived from TCAD modeling

Field-effect transistors (FETs) based on 2D materials have already reached the stage of trial FAB integration. However, reliability limitations caused by various defects present a serious obstacle for their smooth way forward, especially when scaling the device geometries. Still the ongoing research is mostly focused on pure technology aspects, while reliability is often recalled only when showing a randomly measured gate transfer curve to manifest that the hysteresis is "negligible".In fact the hysteresis dynamics contain unique fingerprints of various mechanisms which may coexist or cancel each other, being more complex in scaled FETs, for instance because of simultaneous interaction of defects with the channel and top gate in thin insulators. To fill this gap, here by doing TCAD modeling for nanoscale MoS$_2$/HfO$_2$ FETs we introduce the universal hysteresis mapping method which can correctly capture commonly measured diverse hysteresis dynamics such as conventional clockwise (CW) and counterclockwise (CCW) hysteresis, as well as CW/CCW switching and time separation. Next we extend this method to bias-temperature instabilities (BTI) and show a clear correlation between complex hysteresis dynamics and abnormal BTI recovery. Finally, we validate our mapping method using available experimental data for MoS$_2$ FETs and demonstrate that it provides far more accurate results than a conventional constant current extraction of the hysteresis width, being also usable if a CCW hysteresis is caused by mobile ions.

cond-mat.mtrl-sci