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Solution-Based Property Tuning of Black Phosphorus

DOI:10.1021/acsami.8b14887 期刊:ACS Applied Materials & Interfaces 出版年份:2018 更新时间:2025-09-23 15:21:01
摘要: The air instability of black phosphorus (BP) severely hinders the development of its electronic and optoelectronic applications. Although a lot of effort has been made to passivate it against degradation in ambient conditions, approaches to further manipulate the properties of passivated BP are still very limited. Herein, we report a simple and low-cost chemical method that can achieve BP passivation and property tailoring simultaneously. The method is conducted by immersing a BP sample in the solution containing both 2,2,6,6-tetramethylpiperidinyl-N-oxyl (TEMPO) and triphenylcarbenium tetrafluorobor in a mixture of water and acetone (v/v = 1:1). After the treatment, the BP sample is functionalized with TEMPO, which not only efficiently passivates BP but also p-dopes BP to a degenerated density level of 1013 cm?2. The performance of the BP field effect transistor is improved after functionalization with a high Ion/Ioff ratio of 106 and carrier mobility of 881.5 cm2/(V·s). The functionalization-induced doping also significantly reduces the contact resistance between BP and the Cr/Au electrode to 0.97 kΩ·μm. Additionally, we observe a great reduction of BP electrical and optical anisotropies after functionalization. This chemical functionalization method provides a viable route to simultaneously passivate and tune the properties of BP.
作者: Jun Liu,Dong Sun,Wanfu Shen,Xiaodong Hu,Haicheng Hei,Shuangqing Fan,Daihua Zhang,Chunguang Hu,Ruixue Hu,Jian-Hao Chen,Wei Ji,Jing Liu
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To develop a simple and low-cost chemical method for simultaneously passivating and tuning the properties of black phosphorus (BP) to overcome its air instability and enhance its electronic and optoelectronic applications.

The chemical functionalization of BP with TEMPO not only passivates BP against air degradation but also significantly enhances its electronic properties, including increased carrier mobility, reduced contact resistance, and decreased electrical and optical anisotropies. This method offers a promising route for the development of BP-based electronic and optoelectronic devices.

The study focuses on the chemical functionalization of BP and its effects on electronic properties, but the long-term stability and scalability of the method for industrial applications are not extensively discussed.

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