TY - JOUR
T1 - Extending Polarization Detection to the Infrared Region via Sb2Se3Nanowires/PbS Quantum Dots Heterojunctions
AU - Zhang, Kai
AU - Ran, Wenhao
AU - Yu, Yali
AU - Wang, Pan
AU - Cao, Huichen
AU - Dai, Bin
AU - Han, Yechao
AU - Guo, Linjuan
AU - Li, Zhiqiang
AU - Yang, Juehan
AU - Guo, Hui
AU - Bao, Lihong
AU - Shen, Guozhen
AU - Wei, Zhongming
AU - Yang, Haitao
AU - Gao, Hongjun
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/1/27
Y1 - 2026/1/27
N2 - Polarization-sensitive infrared photodetectors find broad use in military and industrial fields and thus have emerged as a research hotspot in recent years. Owing to the intrinsic asymmetric structure, Sb2Se3 nanowires hold significant application in polarization detection. However, constrained by bandgap width, their polarization detection wavelength is limited to below 1000 nm. In this work, Sb2Se3 nanowires (NWs)/PbS quantum dots (QDs) heterojunctions were fabricated, with the carrier transport efficiency at the heterojunction interface enhanced via long-to-short-chain ligand exchange. Compared with pure Sb2Se3 NW-based photodetectors (PDs), the Sb2Se3 NWs/PbS QDs heterojunction-based counterparts not only have their detection wavelength extended to 1.55 μm but, more notably, their polarization detection wavelength is also extended to 1.55 μm. The photodetector exhibits responsivities (Rλ) of 1.12 A/W and 0.86 A/W for 1.31 and 1.55 μm incident lasers, with measured dichroic ratios of 1.38 and 1.58, respectively, for the polarized light at these two wavelengths. The ultraviolet photoelectron spectroscopy (UPS) analysis reveals that the separation of photogenerated carriers at the heterojunction interface enhances the absorption of infrared polarized light by the defect energy levels in Sb2Se3 NWs, thereby extending the polarized photoresponse wavelength of the heterojunction to 1.55 μm. Moreover, by employing convolution kernels constructed from the infrared polarization Rλ of the Sb2Se3/PbS heterojunction-based PD, the artificial neural network (ANN) can effectively extract feature information, reduce redundant data and noise, and facilitate image recognition. These outstanding polarization detection performances demonstrate that extending the polarization detection wavelength to the infrared region via QDs coupling is an innovative and reliable approach with promising prospects for further applications.
AB - Polarization-sensitive infrared photodetectors find broad use in military and industrial fields and thus have emerged as a research hotspot in recent years. Owing to the intrinsic asymmetric structure, Sb2Se3 nanowires hold significant application in polarization detection. However, constrained by bandgap width, their polarization detection wavelength is limited to below 1000 nm. In this work, Sb2Se3 nanowires (NWs)/PbS quantum dots (QDs) heterojunctions were fabricated, with the carrier transport efficiency at the heterojunction interface enhanced via long-to-short-chain ligand exchange. Compared with pure Sb2Se3 NW-based photodetectors (PDs), the Sb2Se3 NWs/PbS QDs heterojunction-based counterparts not only have their detection wavelength extended to 1.55 μm but, more notably, their polarization detection wavelength is also extended to 1.55 μm. The photodetector exhibits responsivities (Rλ) of 1.12 A/W and 0.86 A/W for 1.31 and 1.55 μm incident lasers, with measured dichroic ratios of 1.38 and 1.58, respectively, for the polarized light at these two wavelengths. The ultraviolet photoelectron spectroscopy (UPS) analysis reveals that the separation of photogenerated carriers at the heterojunction interface enhances the absorption of infrared polarized light by the defect energy levels in Sb2Se3 NWs, thereby extending the polarized photoresponse wavelength of the heterojunction to 1.55 μm. Moreover, by employing convolution kernels constructed from the infrared polarization Rλ of the Sb2Se3/PbS heterojunction-based PD, the artificial neural network (ANN) can effectively extract feature information, reduce redundant data and noise, and facilitate image recognition. These outstanding polarization detection performances demonstrate that extending the polarization detection wavelength to the infrared region via QDs coupling is an innovative and reliable approach with promising prospects for further applications.
KW - heterojunction
KW - image recognition
KW - PbS quantum dots
KW - photodetector
KW - polarization detection
KW - SbSenanowires
UR - https://www.scopus.com/pages/publications/105028795353
U2 - 10.1021/acsnano.5c16680
DO - 10.1021/acsnano.5c16680
M3 - Article
C2 - 41526309
AN - SCOPUS:105028795353
SN - 1936-0851
VL - 20
SP - 2774
EP - 2788
JO - ACS Nano
JF - ACS Nano
IS - 3
ER -