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다차원탄소재료연구단
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Pressure enabled organic reactions via confinement between layers of 2D materials

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Title
Pressure enabled organic reactions via confinement between layers of 2D materials
Author(s)
In Yoon, Seong; Hyoju Park; Lee, Yeonju; Changding Guo; Yu Jin Kim; Joo Song Lee; Seungwoo Son; Myeonggi Choe; Han, Daeho; Kwon, Kidal; Jongyeong Lee; Ma, Kyung Yeol; Ghassami, Amirreza; Moon, Sung Wook; Sun-Young Park; Kang, Bong Kyun; Kim, Yoon-Jeong; Koo, Seonghyun; Genco, Armando; Shim, Jaewoo; Tartakovskii, Alexander; Yunrui Duan; Feng Ding; Ahn, Seokhoon; Ryu, Sunmin; Ju-Young Kim; Yang, Woo Seok; Chhowalla, Manish; Park, Young S.; Seung Kyu Min; Zonghoon Lee; Hyeon Suk Shin
Publication Date
2024-11
Journal
Science Advances, v.10, no.45, pp.eadp9804
Publisher
American Association for the Advancement of Science
Abstract
Confinement of reactants within nanoscale spaces of low-dimensional materials has been shown to provide reorientation of strained reactants or stabilization of unstable reactants for synthesis of molecules and tuning of chemical reactivity. While few studies have reported chemistry within zero-dimensional pores and one-dimensional nanotubes, organic reactions in confined spaces between two-dimensional materials have yet to be explored. Here, we demonstrate that reactants confined between atomically thin sheets of graphene or hexagonal boron nitride experience pressures as high as 7 gigapascal, which allows the propagation of solvent-free organic reactions that ordinarily do not occur under standard conditions. Specifically, we show that cyclodehydrogenation of hexaphenylbenzene without catalysts as a proof of concept and oxidative polymerization of dopamine into sheet-like crystalline structure are enabled by the effective high pressure experienced by the reactants between the graphene layers. Our results demonstrate a facile, general approach for performing high-pressure chemistry based on confinement of reactants within two-dimensional materials.© 2024 American Association for the Advancement of Science.
URI
https://pr.ibs.re.kr/handle/8788114/16117
DOI
10.1126/sciadv.adp9804
Appears in Collections:
Center for Multidimensional Carbon Materials(다차원 탄소재료 연구단) > 1. Journal Papers (저널논문)
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