TY - JOUR
T1 - Ultra-Stable, Endurable, and Flexible Sb2TexSe3- xPhase Change Devices for Memory Application and Wearable Electronics
AU - Li, Shubing
AU - Li, Ming
AU - Chen, Li
AU - Xu, Xionghu
AU - Cui, Anyang
AU - Zhou, Xin
AU - Jiang, Kai
AU - Shang, Liyan
AU - Li, Yawei
AU - Zhang, Jinzhong
AU - Zhu, Liangqing
AU - Hu, Zhigao
AU - Chu, Junhao
N1 - Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/10/12
Y1 - 2022/10/12
N2 - Flexible memory and wearable electronics represent an emerging technology, thanks to their reliability, compatibility, and superior performance. Here, an Sb2TexSe3-x (STSe) phase change material was grown on flexible mica, which not only exhibited superior nature in thermal stability for phase change memory application but also revealed novel function performance in wearable electronics, thanks to its excellent mechanical reliability and endurance. The thermal stability of Sb2Te3 was improved obviously with the crystallization temperature elevated 60 K after Se doping, for the enhanced charge localization and stronger bonding energy, which was validated by the Vienna ab initio simulation package calculations. Based on the ultra-stability of STSe, the STSe-based phase change memory shows 65 000 reversible phase change ability. Moreover, the assembled flexible device can show real-time monitoring and recoverability response in sensing human activities in different parts of the body, which proves its effective reusability and potential as wearable electronics. Most importantly, the STSe device presents remarkable working reliability, reflected by excellent endurance over 100 s and long retention over 100 h. These results paved a novel way to utilize STSe phase change materials for flexible memory and wearable electronics with extreme thermal and mechanical stability and brilliant performance.
AB - Flexible memory and wearable electronics represent an emerging technology, thanks to their reliability, compatibility, and superior performance. Here, an Sb2TexSe3-x (STSe) phase change material was grown on flexible mica, which not only exhibited superior nature in thermal stability for phase change memory application but also revealed novel function performance in wearable electronics, thanks to its excellent mechanical reliability and endurance. The thermal stability of Sb2Te3 was improved obviously with the crystallization temperature elevated 60 K after Se doping, for the enhanced charge localization and stronger bonding energy, which was validated by the Vienna ab initio simulation package calculations. Based on the ultra-stability of STSe, the STSe-based phase change memory shows 65 000 reversible phase change ability. Moreover, the assembled flexible device can show real-time monitoring and recoverability response in sensing human activities in different parts of the body, which proves its effective reusability and potential as wearable electronics. Most importantly, the STSe device presents remarkable working reliability, reflected by excellent endurance over 100 s and long retention over 100 h. These results paved a novel way to utilize STSe phase change materials for flexible memory and wearable electronics with extreme thermal and mechanical stability and brilliant performance.
KW - SbTeSe
KW - phase change materials
KW - phase change memory
KW - ultra-stability
KW - wearable electronics
UR - https://www.scopus.com/pages/publications/85139451387
U2 - 10.1021/acsami.2c13792
DO - 10.1021/acsami.2c13792
M3 - 文章
C2 - 36178431
AN - SCOPUS:85139451387
SN - 1944-8244
VL - 14
SP - 45600
EP - 45610
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 40
ER -