Novel Technology for Highly Ordered Arrays of ‘Graphene Quantum Dot’
A new study, affiliated with UNIST has introduced a novel technology, capable of fabricating highly ordered arrays of graphene quantum dot (GQD). The new technology is expected to pave the way for many other types of devices and physical phenomena to be studied.
This breakthrough has been led by Professor Hyeon Suk Shin in the School of Natural Science at UNIST. In their study, the research team demonstrated a novel way of synthesizing GQDs, embedded inside the hexagonal boron nitride (hBN) matrix. Thus, they demonstrated simultaneous use of in-plane and van der Waals heterostructures to build vertical single electron tunnelling transistors. Their findings have been published in the online edition of Nature Communications on January 16, 2018.

Professor Shin and his research team succeeded in demonstrating novel way of removing the impurities at the edge of GQDs and adjusting the size of GQDs, as desired. The growth of in-plane GQD-hBN heterostructure was achieved on a SiO2 substrate covered by an array of platinum (Pt) nanoparticles (NP), as illustrated in figure above. Then, this was treated with heat in methane (CH4) gas. As a result, the size of GQDs was decided according to the size of Pt particles, thereby generating highly-ordered GQDs inside the matrix of hexagonal boron nitride.

Using the technology, the team fabricated arrays of highly-ordered uniform GQDs, and thus was able to adjust their sizes from 7 to 13 nm. They also succeeded in implementing vertical single electron tunnelling transistors that minimizes impurities to move electrons stably.
Journal Reference
Gwangwoo Kim et al., “Planar and van der Waals heterostructures for vertical tunnelling single electron transistors,” Nature Commnucations, (2019).
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Article credits to Joo Hyon Heo, Public Relations Team, UNIST