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A. Chasin

Publications and source records attributed to A. Chasin.

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Band Tail State Broadening in IGZO TFTs After pBTI-Induced Negative VT Shift Revealed via DC and 1/f Noise Measurements

We investigate the origin of negative threshold voltage shifts in back-gated amorphous IGZO TFTs under positive bias and high temperature stress. Combined DC and 1/f noise measurements reveal that the stress does not generate new dielectric traps but instead broadens the IGZO conduction band tail states. A recovery experiment confirms that the associated threshold voltage, subthreshold swing, and noise degradation are reversible. Simulations using an in-house Poisson solver confirm the experimental observations that high-temperature stress increases hydrogen doping and the density of sub-gap states.

cond-mat.mtrl-sci

Impact of Mechanical Stress on IGZO TFTs: Enhancing PBTI Degradation

This study investigates the impact of out-of-plane compressive mechanical stress (MS) on the performance and reliability of n-channel IGZO thin film transistors (TFTs). It is demonstrated that MS induces a positive Vth shift in the device transfer characteristics and enhances electron trapping during Positive Bias Temperature Instability (PBTI) tests. These effects are attributed to the widening of the IGZO bandgap (EG) and increased accessibility of carriers to AlOX gate oxide trap levels. As substantial residual MS is generated in 3D device processing, understanding its impact on IGZO TFTs is crucial for enabling future 3D DRAM technology.

cond-mat.mtrl-sci

In-poor IGZO: superior resilience to hydrogen in forming gas anneal and PBTI

Integrating In-Ga-Zn-oxide (IGZO) channel transistors in silicon-based ecosystems requires the resilience of the channel material to hydrogen treatment. Standard IGZO, containing 40% In (metal ratio) suffers from degradation under forming gas anneal (FGA) and hydrogen (H) driven positive bias temperature instability (PBTI). We demonstrate scaled top-gated ALD transistors with an In-poor (In $\le$ 17%) IGZO channel that show superior resilience to hydrogen compared to the In-rich (In=40%) counterpart. The devices, fabricated with a 300-mm FAB process with dimensions down to $W_\mathrm{CH} \times L_\mathrm{TG} = 80 \times 40 \mathrm{nm}^2$, show excellent stability in 2-hour 420$^\circ$C forming gas anneal ($0.06 \le \left| \Delta V_{\mathrm{TH}} \right| \le 0.33\mathrm{V}$) and improved resilience to H in PBTI at 125$^\circ$C (down to no detectable H-induced $V_{\mathrm{TH}}$ shift) compared to In-rich devices. We demonstrate that the device degradation by H in the FGA is different from the H-induced VTH instability in PBTI, namely oxygen scavenging by H and H release from a gate-dielectric into the channel, respectively, and that resilience to H in one process does not automatically translate to resilience to H in the other one. This significant improvement in IGZO resilience to H enables the use of FGA treatments during fabrication needed for silicon technology compatibility, as well as further scaling and 3D integration, bringing IGZO-based technologies closer to mass production.

cond-mat.mtrl-sci