材料科学
薄脆饼
微电子
兴奋剂
纳米技术
基质(水族馆)
可扩展性
光电子学
氧化物
氧化锡
计算机科学
数据库
海洋学
地质学
冶金
作者
Debjit Ghoshal,Goutam Paul,Srikrishna Sagar,Cole Shank,Lauren A. Hurley,Nina Hooper,Jeiwan Tan,Kory Burns,Jordan A. Hachtel,Andrew J. Ferguson,Jeffrey L. Blackburn,Jao van de Lagemaat,Elisa M. Miller
标识
DOI:10.1002/adma.202409825
摘要
Abstract 2D materials, particularly transition metal dichalcogenides (TMDCs), have shown great potential for microelectronics and optoelectronics. However, a major challenge in commercializing these materials is the inability to control their doping at a wafer scale with high spatial fidelity. Interface chemistry is used with the underlying substrate oxide and concomitant exposure to visible light in ambient conditions for photo‐dedoping wafer scale MoS 2 . It is hypothesized that the oxide layer traps photoexcited holes, leaving behind long‐lived electrons that become available for surface reactions with ambient air at sulfur vacancies (defect sites) resulting in dedoping. Additionally, high fidelity spatial control is showcased over the dedoping process, by laser writing, and fine control achieved over the degree of doping by modulating the illumination time and power density. This localized change in MoS 2 doping density is very stable (at least 7 days) and robust to processing conditions like high temperature and vacuum. The scalability and ease of implementation of this approach can address one of the major issues preventing the “Lab to Fab” transition of 2D materials and facilitate its seamless integration for commercial applications in multi‐logic devices, inverters, and other optoelectronic devices.
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