TY - JOUR
T1 - Growth-stage Zn doping reduces Schottky barriers and enhances the optoelectronic performance of 2D InSe
AU - Zheng, Dan
AU - Liu, Yi
AU - Yu, Haiwen
AU - Liu, Kejing
AU - Sun, Zhengyi
AU - Li, Jian
AU - Zhang, Baoqiang
AU - Chen, Shuyu
AU - Han, Ning
AU - Huang, He
AU - Mukhametkarimov, Yerzhan
AU - Zhao, Qinghua
AU - Wang, Tao
N1 - Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2026.
PY - 2026
Y1 - 2026
N2 - Two-dimensional (2D) semiconductors are attractive for next-generation “More-than-Moore” electronics. However, their performance is often constrained by intrinsic defects that limit carrier transport and recombination. Here, we report centimeter-sized Zn-doped InSe crystals grown by the vertical Bridgman method and demonstrate high-performance InSe photodetectors enabled by growth-stage defect engineering. It was found that Zn incorporation preserves the layered InSe structure while inducing slight lattice expansion along the c axis. Photoluminescence (PL), X-ray photoelectron spectroscopy (XPS), and Hall measurements reveal defect-state reconstruction and partial compensation of native donor-like defects, leading to reduced carrier concentration and weaker defect scattering. Consequently, Zn-doped InSe devices achieve a high on/off ratio of ∼105 and a mobility of 0.468 cm2 V−1 s−1, along with a remarkable photoresponsivity of ∼438 A W−1. Scanning photocurrent microscopy (SPCM) and temperature-dependent transport measurements further show that Zn doping lowers the Schottky barrier height by weakening Fermi-level pinning at the metal–semiconductor interface. These results establish Zn doping as an effective strategy for coordinating defect regulation, carrier transport, and contact engineering in InSe, and provide a practical route towards high-performance 2D optoelectronic devices.
AB - Two-dimensional (2D) semiconductors are attractive for next-generation “More-than-Moore” electronics. However, their performance is often constrained by intrinsic defects that limit carrier transport and recombination. Here, we report centimeter-sized Zn-doped InSe crystals grown by the vertical Bridgman method and demonstrate high-performance InSe photodetectors enabled by growth-stage defect engineering. It was found that Zn incorporation preserves the layered InSe structure while inducing slight lattice expansion along the c axis. Photoluminescence (PL), X-ray photoelectron spectroscopy (XPS), and Hall measurements reveal defect-state reconstruction and partial compensation of native donor-like defects, leading to reduced carrier concentration and weaker defect scattering. Consequently, Zn-doped InSe devices achieve a high on/off ratio of ∼105 and a mobility of 0.468 cm2 V−1 s−1, along with a remarkable photoresponsivity of ∼438 A W−1. Scanning photocurrent microscopy (SPCM) and temperature-dependent transport measurements further show that Zn doping lowers the Schottky barrier height by weakening Fermi-level pinning at the metal–semiconductor interface. These results establish Zn doping as an effective strategy for coordinating defect regulation, carrier transport, and contact engineering in InSe, and provide a practical route towards high-performance 2D optoelectronic devices.
UR - https://www.scopus.com/pages/publications/105046044092
U2 - 10.1039/d6tc01689h
DO - 10.1039/d6tc01689h
M3 - 文章
AN - SCOPUS:105046044092
SN - 2050-7534
JO - Journal of Materials Chemistry C
JF - Journal of Materials Chemistry C
ER -