volume 25 issue 8 pages 2588-2595

Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method

Yiran Wu 1, 2
Jin Yang Liu 1, 2, 3, 4, 5, 6, 7, 8
Yulong Lian 1, 2
Yuzhen Lian 1, 2, 3, 4
Yiling Lian 1, 2
HONGBING CAI 9, 10, 11, 12
1
 
College of Physics and Energy, Fuzhou, P.R. China
3
 
College of Physics and Energy
5
 
Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials
6
 
Fujian Provincial Engineering Technology Research Center of Solar Energy Conversion and Energy Storage
7
 
Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials, Fuzhou, P.R. China
8
 
Fujian Provincial Engineering Technology Research Center of Solar Energy Conversion and Energy Storage, Fuzhou, P.R. China
9
 
Hefei National Laboratory for Physical Science at the Microscale
11
 
Hefei National Laboratory for Physical Science at the Microscale, Hefei, P.R. China
Publication typeJournal Article
Publication date2025-03-27
scimago Q2
wos Q1
SJR0.633
CiteScore5.6
Impact factor3.4
ISSN15287483, 15287505
Abstract
One-dimensional multisegment nanostructures, with their unique physicochemical properties and broad application potential in optoelectronics, have garnered significant attention. However, current synthesis methods face challenges, including strict catalyst requirements, limited control over segment dimensions, and difficulties in achieving scalable and precise fabrication. These obstacles hinder the exploration of size-dependent physical properties and advanced applications. Here, we present a catalyst-free incommensurate heteroepitaxial growth method to synthesize Sb2Se3 multisegment homostructured nanowires. Using dashed-line-like nanowires synthesized in the first step as templates, our method achieves precise control over the segment number (three to nine) and diameter, forming homostructures with distinct physical properties. The Sb2Se3 nanowires grow along the [001] direction, and their anisotropic characteristics were confirmed by angle-resolved polarization Raman spectroscopy (ARPRS). The Sb2Se3 nanowires were applied in polarization-sensitive photodetectors, demonstrating a high dichroic ratio (∼1.7) and strong anisotropic photocurrent responses. This approach provides a versatile and scalable solution for fabricating multisegment nanostructures with tailored properties, paving the way for the further exploration of size-dependent phenomena and their integration into advanced anisotropic optoelectronic devices.
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Wu Y. et al. Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method // Crystal Growth and Design. 2025. Vol. 25. No. 8. pp. 2588-2595.
GOST all authors (up to 50) Copy
Wu Y., Liu J. Y., Lian Y., Lian Y., Lian Y., CAI H. Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method // Crystal Growth and Design. 2025. Vol. 25. No. 8. pp. 2588-2595.
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TY - JOUR
DO - 10.1021/acs.cgd.5c00101
UR - https://pubs.acs.org/doi/10.1021/acs.cgd.5c00101
TI - Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method
T2 - Crystal Growth and Design
AU - Wu, Yiran
AU - Liu, Jin Yang
AU - Lian, Yulong
AU - Lian, Yuzhen
AU - Lian, Yiling
AU - CAI, HONGBING
PY - 2025
DA - 2025/03/27
PB - American Chemical Society (ACS)
SP - 2588-2595
IS - 8
VL - 25
SN - 1528-7483
SN - 1528-7505
ER -
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@article{2025_Wu,
author = {Yiran Wu and Jin Yang Liu and Yulong Lian and Yuzhen Lian and Yiling Lian and HONGBING CAI},
title = {Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method},
journal = {Crystal Growth and Design},
year = {2025},
volume = {25},
publisher = {American Chemical Society (ACS)},
month = {mar},
url = {https://pubs.acs.org/doi/10.1021/acs.cgd.5c00101},
number = {8},
pages = {2588--2595},
doi = {10.1021/acs.cgd.5c00101}
}
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Wu, Yiran, et al. “Sb2Se3 Mutisegment Homostructured Nanowire Growth with a Catalyst-Free Incommensurate Heteroepitaxial Method.” Crystal Growth and Design, vol. 25, no. 8, Mar. 2025, pp. 2588-2595. https://pubs.acs.org/doi/10.1021/acs.cgd.5c00101.