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Renaissance of an Old Topic: From Borazines to BN-doped Nanographenes

机译:旧主题的复兴:从硼嗪到BN掺杂的纳米石墨烯

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Graphene is one of the leading materials in today's science, but the lack of a band gap limits its application to replace semiconductors in optoelectronic devices. To overcome this limitation, the replacement of C=C bonds by isostructural and isoelectronic bonds is emerging as an effective strategy to open a band gap in monoatomic graphene layers. First prepared by Stock and Pohland in 1926, borazine is the isoelectronic and isostructural inorganic analogue of benzene, where the C=C bonds are replaced by B-N couples. The strong polarity of the BN bonds widens the molecular HOMO-LUMO gap, imparting strong UV-emission/absorption and electrical insulating properties. These properties make borazine a valuable molecular scaffold to be inserted as doping units in graphitic-based carbon materials to tailor a relevant band gap. It is with this objective that we became interested in the development of new synthetic organic methodologies to gain access to functionalized borazine derivatives. In particular, we have described the synthesis of borazine derivatives that, featuring aryl substituents at the B-centers bearing ortho-functionalities, are exceptionally stable against hydrolysis. Building on these structural motifs, we prepared hybrid BN-doped polyphenylene nanostructures featuring controlled doping patterns, both as dosage and orientation. Finally, exploiting the Friedel-Craft electrophilic aromatic substitution, we could develop the first rational synthesis of the first soluble hexa-peri-hexabenzoborazinocoronene and measured its optoelectronic properties, showing a widening of its gap compared to its full-carbon congener.
机译:石墨烯是当今科学中的领先材料之一,但是缺乏带隙限制了其在光电器件中替代半导体的应用。为了克服该限制,用等结构键和等电子键取代C = C键正在成为一种在单原子石墨烯层中打开带隙的有效策略。硼嗪是由Stock和Pohland于1926年首次制备的,是苯的等电子和同构无机类似物,其中C = C键被B-N对取代。 BN键的强极性扩大了分子HOMO-LUMO的间隙,赋予了较强的紫外线发射/吸收和电绝缘性能。这些特性使硼嗪成为一种有价值的分子支架,可以作为掺杂单元插入石墨基碳材料中,以定制相关的带隙。出于这个目标,我们对开发新的有机合成方法学感兴趣,以获取功能化的硼嗪衍生物。特别是,我们已经描述了硼嗪衍生物的合成,该硼嗪衍生物的特征是在具有邻位官能团的B中心具有芳基取代基,对水解异常稳定。在这些结构基序的基础上,我们制备了混合BN掺杂的聚苯撑纳米结构,其特征在于剂量和方向均可控制。最后,通过利用Friedel-Craft亲电芳香取代基,我们可以开发出第一个合理的可溶性首个可溶的六-六-六苯并硼氮杂并并并测量其光电性能的方法,与全碳同类物相比,其缺口不断扩大。

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