TY - JOUR
T1 - High-Performance Air-Stable Polymer Monolayer Transistors for Monolithic 3D CMOS logics
AU - Cheng, Miao
AU - Zhang, Yanqin
AU - Wang, Jinyao
AU - Wang, Haonan
AU - Xie, Yifan
AU - Zhang, Shuaidi
AU - Liu, Changrui
AU - Chu, Jingyun
AU - Zhang, Feng
AU - Yang, Zhenzhong
AU - Zheng, Zilong
AU - Wu, Mingjian
AU - Li, Ling
AU - Li, Mengmeng
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Materials published by Wiley-VCH GmbH.
PY - 2026/2/6
Y1 - 2026/2/6
N2 - The monolayer transistor, where the semiconductor layer is a single molecular layer, offers an ideal platform for exploring transport mechanisms both theoretically and experimentally by eliminating the influence of spatially correlated microstructure. However, the structure-property relations in polymer monolayers remain poorly understood, leading to low transistor performance to date. Herein, a self-confinement effect is demonstrated in the polymer monolayer with nanofibrillar microstructures and edge-on orientation, as characterized by the 4D scanning confocal electron diffraction method. The polymer chains align parallel to the nanofiber long axis, while the π-stacking direction aligns perpendicular to this axis. To reduce the trap density at the semiconductor/dielectric interface, a top-gate configuration is employed with CYTOP as gate dielectric, and the resulting monolayer transistors achieve a field-effect mobility of 7.12 cm2 V−1 s−1, an on/off ratio of 10⁸, and a subthreshold swing of 0.21 V dec−1, among the performance records for polymer monolayer transistors. Notably, the top-gate architecture allows self-encapsulation, and the monolayer network induces the morphologic lock effect, contributing to a remarkable device stability over 1260 days. Additionally, the low thermal budget of this polymer monolayer transistor enables the monolithic 3D integration with n-type oxide transistor, resulting in hybrid complementary inverters with reasonable voltage amplification capabilities.
AB - The monolayer transistor, where the semiconductor layer is a single molecular layer, offers an ideal platform for exploring transport mechanisms both theoretically and experimentally by eliminating the influence of spatially correlated microstructure. However, the structure-property relations in polymer monolayers remain poorly understood, leading to low transistor performance to date. Herein, a self-confinement effect is demonstrated in the polymer monolayer with nanofibrillar microstructures and edge-on orientation, as characterized by the 4D scanning confocal electron diffraction method. The polymer chains align parallel to the nanofiber long axis, while the π-stacking direction aligns perpendicular to this axis. To reduce the trap density at the semiconductor/dielectric interface, a top-gate configuration is employed with CYTOP as gate dielectric, and the resulting monolayer transistors achieve a field-effect mobility of 7.12 cm2 V−1 s−1, an on/off ratio of 10⁸, and a subthreshold swing of 0.21 V dec−1, among the performance records for polymer monolayer transistors. Notably, the top-gate architecture allows self-encapsulation, and the monolayer network induces the morphologic lock effect, contributing to a remarkable device stability over 1260 days. Additionally, the low thermal budget of this polymer monolayer transistor enables the monolithic 3D integration with n-type oxide transistor, resulting in hybrid complementary inverters with reasonable voltage amplification capabilities.
KW - complementary logics
KW - device stability
KW - monolithic 3D integration
KW - polymer monolayer transistors
KW - structure-property relation
UR - https://www.scopus.com/pages/publications/105015575180
U2 - 10.1002/adma.202515591
DO - 10.1002/adma.202515591
M3 - 文章
C2 - 40923475
AN - SCOPUS:105015575180
SN - 0935-9648
VL - 38
JO - Advanced Materials
JF - Advanced Materials
IS - 8
M1 - e15591
ER -