Solution-Processed Stretchable Ag<sub>2</sub> S Semiconductor Thin Films for Wearable Self-Powered Nonvolatile Memory.

Jo, Seungki; Cho, Soyoung; Yang, U Jeong; Hwang, Gyeong-Seok; Baek, Seongheon; Kim, Si-Hoon; Heo, Seung Hwae; Kim, Ju-Young et al. · Adv Mater · 2021

basic_science · Level V

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Abstract

Compared with the large plastic deformation observed in ductile metals and organic materials, inorganic semiconductors have limited plasticity (<0.2%) due to their intrinsic bonding characters, restricting their widespread applications in stretchable electronics. Herein, the solution-processed synthesis of ductile α-Ag<sub>2</sub> S thin films and fabrication of all-inorganic, self-powered, and stretchable memory devices, is reported. Molecular Ag<sub>2</sub> S complex solution is synthesized by chemical reduction of Ag<sub>2</sub> S powder, fabricating wafer-scale highly crystalline Ag<sub>2</sub> S thin films. The thin films show stretchability due to the intrinsic ductility, sustaining the structural integrity at a tensile strain of 14.9%. Moreover, the fabricated Ag<sub>2</sub> S-based resistive random access memory presents outstanding bipolar switching characteristics (I<sub>on</sub> /I<sub>off</sub> ratio of ≈10<sup>5</sup> , operational endurance of 100 cycles, and retention time >10<sup>6</sup> s) as well as excellent mechanical stretchability (no degradation of properties up to stretchability of 52%). Meanwhile, the device is highly durable under diverse chemical environments and temperatures from -196 to 300 °C, especially maintaining the properties for 168 h in 85% relative humidity and 85 °C. A self-powered memory combined with motion sensors for use as a wearable healthcare monitoring system is demonstrated, offering the potential for designing high-performance wearable electronics that are usable in daily life in a real-world setting.