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Designing artificial 2D crystals with site and size controlled quantum dots.


ABSTRACT: Ordered arrays of quantum dots in two-dimensional (2D) materials would make promising optical materials, but their assembly could prove challenging. Here we demonstrate a scalable, site and size controlled fabrication of quantum dots in monolayer molybdenum disulfide (MoS2), and quantum dot arrays with nanometer-scale spatial density by focused electron beam irradiation induced local 2H to 1T phase change in MoS2. By designing the quantum dots in a 2D superlattice, we show that new energy bands form where the new band gap can be controlled by the size and pitch of the quantum dots in the superlattice. The band gap can be tuned from 1.81?eV to 1.42?eV without loss of its photoluminescence performance, which provides new directions for fabricating lasers with designed wavelengths. Our work constitutes a photoresist-free, top-down method to create large-area quantum dot arrays with nanometer-scale spatial density that allow the quantum dots to interfere with each other and create artificial crystals. This technique opens up new pathways for fabricating light emitting devices with 2D materials at desired wavelengths. This demonstration can also enable the assembly of large scale quantum information systems and open up new avenues for the design of artificial 2D materials.

SUBMITTER: Xie X 

PROVIDER: S-EPMC5577271 | biostudies-literature | 2017 Aug

REPOSITORIES: biostudies-literature

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Designing artificial 2D crystals with site and size controlled quantum dots.

Xie Xuejun X   Kang Jiahao J   Cao Wei W   Chu Jae Hwan JH   Gong Yongji Y   Ajayan Pulickel M PM   Banerjee Kaustav K  

Scientific reports 20170830 1


Ordered arrays of quantum dots in two-dimensional (2D) materials would make promising optical materials, but their assembly could prove challenging. Here we demonstrate a scalable, site and size controlled fabrication of quantum dots in monolayer molybdenum disulfide (MoS<sub>2</sub>), and quantum dot arrays with nanometer-scale spatial density by focused electron beam irradiation induced local 2H to 1T phase change in MoS<sub>2</sub>. By designing the quantum dots in a 2D superlattice, we show  ...[more]

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