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◆ Advanced materials (Deerfield Beach, Fla.)2026-09-05

Gradient-Mass-Transfer Synthesis of 2D [Bi2CuO3]SO4 Crystals for Anisotropy Engineering.

Qiao Meng, Xianfeng Shen, Shijia Tan, Junhong Chen, Yongjing Wang, Wanfu Shen, Rongjin Li, Zhongming Wei, Lin Li, Qing Zhang, Dechao Geng

原始摘要(英文原文)· Original abstract
The intrinsic physical anisotropy of low-symmetry materials makes them highly promising candidates for polarization-sensitive devices. However, their practical application remains constrained by the scarcity of single materials that can combine low symmetry with high performance. Here, we report a novel low-symmetry [Bi2CuO3]SO4 crystal with an insulating nature, designed to enable symmetry control over conventional high-performance semiconductors. We achieve controllable growth of layered [Bi2CuO3]SO4 nanosheets via a gradient-mass-transfer-assisted chemical vapor deposition method, with thicknesses down to 1.43 nm. Alternating [Bi2CuO3]2+ cationic layers and SO4 2- anionic layers, coupled with disparate ionic radii of Bi3+ and Cu2+, endow the [Bi2CuO3]SO4 material with low structural symmetry, resulting in pronounced in-plane optical anisotropy. Upon integration with high-symmetry MoS2, [Bi2CuO3]SO4 induces interfacial symmetry breaking, driven by strong interfacial coupling and substantial charge redistribution. Notably, by fabricating devices along different crystallographic orientations of [Bi2CuO3]SO4, tunable polarization ratios are exhibited, reaching a maximum of 5.44 along the a-axis and a minimum of 1.57 along the b-axis. This work establishes a reliable strategy for obtaining heterostructures with low symmetry and tunable anisotropy, advancing next-generation directional optoelectronic devices.
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Gradient-Mass-Transfer Synthesis of 2D [Bi2CuO3]SO4 Crystals for Anisotropy Engineering. — 科研速览 Science Skim