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박영석

Park, Young S.
Advanced Organic Materials Lab.
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Unveiling Energy Transfer Mechanisms in Nanographene-Incorporated Metal-Organic Frameworks

Author(s)
Lee, JunghyeHwang, EunhyeKim, Tae InJin, EunjiCho, EunchanPark, Young S.Min, Seung KyuKwon, Tae-HyukChoe, Wonyoung
Issued Date
2024-04
DOI
10.1021/acsmaterialslett.3c01486
URI
https://scholarworks.unist.ac.kr/handle/201301/81971
Citation
ACS MATERIALS LETTERS, v.6, no.4, pp.1151 - 1159
Abstract
Nanographenes are a class of extended pi-conjugated molecules with great potential for photophysical and electrochemical properties. However, most nanographenes show self-aggregation due to their strong pi-pi interaction, resulting in structures barely possessing any open pi surface. We find that metal-organic frameworks (MOFs) can be an ideal platform to construct periodic arrays and pores with isolated large pi-conjugated surfaces by avoiding undesired pi-pi interactions between the nanographene molecules. Here, we report a multivariate series of nanographene-incorporated MOFs, UMOF-2-X, utilizing the graphene-like hexatopic organic linkers, hexaphenylethynylbenzene (HPB) and hexabenzocoronene (HBC), through a mixed-linker strategy. Remarkably, UMOF-2 inhibits the occurrence of linker-to-metal charge transfer to Cu metal and shows efficient energy transfer between HPB and HBC linkers.
Publisher
AMER CHEMICAL SOC
ISSN
2639-4979
Keyword
HEXABENZOCORONENEEFFICIENTEMISSIONGRAPHENEBEHAVIORHYBRIDLIGAND

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