TY - JOUR
T1 - Dense arrays of aligned quasi-1D Bi4Br4 topological insulator nanoribbons achieved via lattice-guided oriented epitaxy on WTe2
AU - Xu, Shiqi
AU - Zhang, Xu
AU - Yang, Liu
AU - Dong, Yina
AU - Qi, Shuo
AU - Bai, Jiangyue
AU - Gao, Haizhen
AU - Cheng, Nan
AU - Zhou, Yu
AU - Zhao, Liyuan
AU - Cha, Limei
AU - Wang, Dongfei
AU - Wang, Zhiwei
AU - Han, Junfeng
N1 - Publisher Copyright:
© Higher Education Press 2026.
PY - 2026/8
Y1 - 2026/8
N2 - Bi4Br4, an emerging quasi-1D topological insulator, exhibits rich topological phases and great potential for low-power electronics and topological quantum computing. High-quality, oriented Bi4Br4 films are essential for exploring low-dimensional topological physics and developing functional devices. However, the growth of such films is highly challenging due to their sensitivity to growth parameters, and current synthesis techniques can only yield randomly oriented or multidirectional Bi4Br4 nanostructures, which impedes the study of intrinsic anisotropy and device integration. Here, we demonstrate a molecular beam epitaxy approach using anisotropic WTe2 as an epitaxial template to achieve oriented Bi4Br4 nanoribbon arrays with controlled thickness. Through systematic optimization of growth temperature, source rate ratio and annealing conditions, we established the optimal window for high-quality nanoribbon synthesis. The resulting nanostructures exhibit well-defined morphologies and sharp edges, with a thickness of 2–9 nm. This work establishes a viable route for the oriented growth of Bi4Br4 and provides an ideal platform for investigating topological edge transport, anisotropic phenomena, and the design of topological quantum devices.
AB - Bi4Br4, an emerging quasi-1D topological insulator, exhibits rich topological phases and great potential for low-power electronics and topological quantum computing. High-quality, oriented Bi4Br4 films are essential for exploring low-dimensional topological physics and developing functional devices. However, the growth of such films is highly challenging due to their sensitivity to growth parameters, and current synthesis techniques can only yield randomly oriented or multidirectional Bi4Br4 nanostructures, which impedes the study of intrinsic anisotropy and device integration. Here, we demonstrate a molecular beam epitaxy approach using anisotropic WTe2 as an epitaxial template to achieve oriented Bi4Br4 nanoribbon arrays with controlled thickness. Through systematic optimization of growth temperature, source rate ratio and annealing conditions, we established the optimal window for high-quality nanoribbon synthesis. The resulting nanostructures exhibit well-defined morphologies and sharp edges, with a thickness of 2–9 nm. This work establishes a viable route for the oriented growth of Bi4Br4 and provides an ideal platform for investigating topological edge transport, anisotropic phenomena, and the design of topological quantum devices.
KW - BiBr nanoribbons
KW - WTe
KW - molecular beam epitaxy
KW - oriented growth
KW - quasi-1D topological insulator
KW - van der Waals heterostructures
UR - https://www.scopus.com/pages/publications/105047598937
U2 - 10.15302/frontphys.2026.085208
DO - 10.15302/frontphys.2026.085208
M3 - Article
AN - SCOPUS:105047598937
SN - 2095-0462
VL - 21
JO - Frontiers of Physics
JF - Frontiers of Physics
IS - 8
M1 - 085208
ER -