材料科学
标度系数
纳米技术
化学气相沉积
光电子学
范德瓦尔斯力
外延
量子点
应变工程
基质(水族馆)
拉伤
电导率
千分尺
纳米尺度
各向异性
可扩展性
沉积(地质)
纵横比(航空)
纳米结构
异质结
热导率
分子束外延
热电效应
作者
Mengdi Chen,Yingzhe Li,Manzhang Xu,Weiwei Li,Lei Luo,Ruoyan Miao,Ruoqing Zhao,Lei Li,Lu Zheng,Xuewen Wang,Wei Huang
标识
DOI:10.1002/adma.202522247
摘要
ABSTRACT Quasi‐one‐dimensional (quasi‐1D) van der Waals MX 3 transition metal trichalcogenides (TMTCs), have emerged as a compelling material platform due to their unique quantum confinement effects and anisotropic properties. Nevertheless, the narrow growth window and extreme sensitivity to growth parameters make it challenging to synthesize TMTCs via chemical vapor deposition (CVD). Herein, we demonstrate an ethanol‐assisted CVD method for the scalable growth of TiS 3 nanoribbons. This approach utilizes the combination of ethanol with TiCl 4 and S powder to form a Ti source precursor, enabling the high yields of TiS 3 nanoribbons with a thickness as low as 10 nm and lengths on the micrometer scale (140±30 µm, aspect ratio of approximately 260). Moreover, the nanoribbons exhibit epitaxial vertical alignment on substrates, facilitating the versatile transfer to arbitrary target substrates. The single TiS 3 nanoribbon exhibits high conductivity (σ 293 K = 3.1 × 10 4 S/m) from 80 to 593 K. Flexible strain sensors based on TiS 3 nanoribbon networks demonstrate a high gauge factor of 135.3, a wide strain detection range (40–7400 με), and strong tolerance to temperatures up to 773 K. This strategy provides a unique pathway for synthesis of TMTCs, providing essential material support for the development of high‐performance flexible electronic devices.
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